DottaandPaperclip e34abee670 feat(mcp): connect assistants to a team with user OAuth (#14846)
## Thinking Path

> - Paperclip gives teams durable tasks, agent execution, budgets, and
approvals.
> - People also use assistants in Codex, Claude, and other MCP clients.
> - Those assistants need a scoped connection that preserves the
person’s permissions and attribution.
> - Delegating a task must not turn the assistant into the assigned
agent.
> - This PR adds opt-in user OAuth, ten first-party tools, browser
consent, and workflow packages.
> - Paid product evals verify the resulting tasks, documents,
attribution, retries, and access boundaries.
> - The team keeps working after the assistant conversation ends.

## Linked Issues or Issue Description

**Problem or motivation**

A person cannot connect an external assistant to an existing team
through browser consent and safely delegate durable work as themselves.

**Proposed solution**

Expose an opt-in `/mcp/paperclip` endpoint with individually described
first-party operations. Bind every connection to a person, client,
company, resource, and scopes. Reuse domain authorization and
scheduling. Package shared team-review, delegation, and follow-up
workflows for OpenAI/Codex and Claude.

**Alternatives considered**

Related PRs #9393 and #12549 cover earlier remote MCP and board-operator
approaches. This change uses user OAuth and a bounded public catalog. It
does not expose a generic executor, operator administration, static
shared board credentials, or external agent execution. Registry listing
work in #9851 is a separate distribution step.

**Roadmap alignment**

This maintainer-requested implementation extends the governed MCP
gateway, activity attribution, durable work products, and hosted
deployment direction in `ROADMAP.md`. It implements the first release of
the saved design plan; external agent participation and granted
third-party tools remain later releases.

## What Changed

- Add MCP 2.0 discovery and task status/comment/document Events on the
same authenticated endpoint. Persist subscriptions and delivery
receipts, verify HTTPS callbacks, sign Standard Webhooks, encrypt
callback material, recheck permissions/Cloud membership, and bound
retries/expiry. Older MCP clients keep their existing tools.
- Add discovery, dynamic client registration, S256 PKCE, resource
validation, rotating refresh tokens, revocation, and company consent.
Store credentials as hashes and recheck membership at execution.
- Add tools for connection identity, agents/projects, task
search/read/create, human comments, documents/deliverables, and
pending-approval links. Preserve current domain permissions and
scheduling.
- Add durable mutation receipts across reconnects. Matching retries
replay results; uncertain outcomes keep the same request ID and require
inspection.
- Add consent and connection-management pages, OAuth log redaction,
shared plugin workflows, and separate OpenAI/Codex and Claude package
outputs.
- Add eight paid Product E2E cases across three models, independent
durable-state grading, usage evidence, cleanup, and report integration.
Add task-document guidance and regenerate the runner capability
inventories.
- Add migrations 0301 and 0302, the dated implementation plan, result
notes, and direct-client setup instructions in `doc/public-mcp.md`.

## Verification

- Merge integration `e180b1948`: resolved conflicts with current master,
preserved both eval registries, regenerated capability catalogs, and
regenerated migrations as 0301/0302 while keeping the original
replay-safe SQL byte-identical. Local migration safety/snapshot tests
(26), MCP/OAuth tests (38), redaction/OpenAPI tests (71), and eval
catalog/grading tests (198) pass. Token and capability gates pass. Full
recursive typecheck passed. Fresh Greptile review is 5/5 with no
unresolved findings. CI is green on this exact head (55 successes, two
intentional skips, one neutral result): one unchanged Cursor sandbox
test timed out at 10 seconds, then passed locally in 856 ms. A single
retry of that failed shard and the aggregate workflow passed. Merge
remains blocked on the repository code-owner approval rule.

Earlier checks passed at `6aa0962d4fb715f2190bb7bb22efacab2e58495d`: 55
successes, two intentional skips and one neutral result. [The earlier CI
run](https://github.com/paperclipai/paperclip/actions/runs/36901592350)
includes all test shards, browser tests, typecheck, build and canary dry
run. Greptile was 5/5 on that commit with no unresolved review threads.
GitHub still requires code-owner review under the repository merge
rules; passing checks do not bypass that approval. Paid source
fingerprints remain separate below and in the dated result note.

- Paid Events qualification passes **3/3**: GPT-5.4 Mini, Claude Haiku
4.5 and Claude Sonnet 4.6. Each uses a real public HTTPS callback,
signature verification and report retrieval in a fresh conversation. A
final Mini regression passes after the quota/status fixes. All evidence
validates. Bounded tunnel startup retries occur before provider calls
and remain visible; failed earlier attempts retain their original
grades.
- The earlier complete seven-case matrix passes **21/21**, with a
separate **3/3** delegation regression. Two preceding matrices also
passed 21/21 each. A complete 24-cell matrix including Events has not
been run. [The dated
results](doc/plans/2026-10-01-public-mcp-paid-eval-results.md) retain
exact source fingerprints, failures, model IDs and partial costs.
- Node 24: repository-wide `pnpm -r typecheck` and `pnpm build` pass
after merging master. Server typecheck passes after the final
quota/status changes. Eval typecheck and all 892 eval-support tests
pass.
- All 33 real MCP/OAuth tests pass. The preceding combined MCP,
redaction, private-address and DNS-rebinding run passed 129 tests; two
later MCP regressions cover quota reuse and unchanged-status
suppression. All 28 adjacent issue-tree/stale-lock route tests pass. CI
then found a null checkout result in the existing concurrent-workspace
path; logging now uses optional status access. All 12 closed-workspace
tests and all 33 MCP tests pass after that correction. The exact-start
event calibration exposed a timestamp gap; scanning now includes the
subscription start, with all 33 MCP tests and server typecheck passing.
These two narrow corrections follow the paid regression.
- A real Core → Cloud → Core authority round trip passes OAuth, MCP 2.0
subscription/delivery, current membership loss, unsubscribe, legacy SDK
tools, refresh and revocation. Its callback transport is a fixture with
independent HMAC verification. The paid Events campaigns separately
prove public HTTPS delivery.
- Earlier component qualification passed UI 7,117 tests, CLI 502, shared
832, skills catalog 20, database 160 and OpenAPI 10. Token gates, module
boundaries, migration order and plugin regeneration passed. CI covers
general/serialized suites, eight browser shards, runner checks,
typecheck, build and canary dry run.
- **Local full-suite limitation:** the earlier monolithic run was not
clean. It encountered overlapping schema rebuilding, Mac database
shared-memory limits and isolated CLI/fixture failures. Targeted reruns
passed. The existing >32 MiB Git filename stress test still hit its
300-second Mac timeout. The additional serialized sweep stopped after 62
passing suites once CI passed. Original failures and partial logs
remain; this PR does not claim a wholly green local monolithic run.
- Local Codex CLI and Claude Code OAuth login and MCP SDK
interoperability were verified. Public-store installation, actual
ChatGPT Work Cloud Events UI, staging HTTPS client behavior and hosted
newcomer provisioning remain release gates.

Enablement is moving to **Settings → Experimental → Assistant
connections (MCP)** in the stacked follow-up
[#14933](https://github.com/paperclipai/paperclip/pull/14933). Merge
both for the intended setup experience. This foundation branch alone
still uses `PAPERCLIP_PUBLIC_MCP_ENABLED=true`. After deployment, set
`PAPERCLIP_PUBLIC_URL` to the authenticated instance's HTTPS origin, and
connect to `/mcp/paperclip`. Select a team and allow writes in browser
consent. Configure an available agent and budget, then delegate and
retrieve results later. For Events, rescan the deployed plugin catalog
in ChatGPT Work Cloud; the host supplies its webhook credentials when
the user asks to watch a task. See [the setup
runbook](doc/public-mcp.md).

## Risks

- Events are at-least-once and may arrive out of order. No replay cursor
is advertised. Clients must refresh finite subscriptions, read current
state and avoid comment feedback loops. Callback material uses the
instance secrets master key; hosted subscriptions require the updated
Cloud broker and are bounded to five minutes/the access proof expiry.
- ChatGPT Work Cloud/dot event UI, plugin rescan and a hosted staging
subscription remain deployment gates. Local signed-webhook and paid
model evidence does not claim those surfaces have been exercised.
- Disabled by default. Merging adds schema and opt-in code; it does not
deploy a public endpoint, publish a store listing, create a team, or
start paid agents.
- Migrations 0301 and 0302 are additive and idempotent. Their SQL is
unchanged from the earlier preview numbers, so hash-aware upgrade
reconciliation preserves prior staging applications. Normal instance
upgrades must apply it before enabling MCP.
- Task creation and comments can schedule paid agent work. Consent and
tool descriptions disclose that effect. Revocation blocks future calls
but does not undo delegated work.
- Public deployments need edge rate limits and credential-safe logging.
Internal dispatch is restricted to the closed catalog and carries a
request-local verified actor.
- Hosted onboarding requires the companion Cloud broker, encryption-key
configuration, and tenant rollout. Self-hosted direct connections can
use this PR alone.
- Store acceptance and agent-mode participation are not claimed.
Checked-in plugin endpoints are development defaults; rebuild packages
for a real deployment before installation.

## Model Used

OpenAI GPT-6 in Codex, with reasoning, tool use, and code execution. A
more specific serving version and context-window size were not exposed
by the session. Paid eval models: `gpt-5.4-mini-2026-03-17`,
`claude-haiku-4-5-20251001`, and `claude-sonnet-4-6`.

## Checklist

- [x] I have included a thinking path that traces from project context
to this change
- [x] I have specified the model used (with version and capability
details)
- [x] I have checked ROADMAP.md and confirmed this PR does not duplicate
planned core work
- [x] I have searched GitHub for duplicate or related PRs and linked
them above
- [x] I have either (a) linked existing issues with `Fixes: #` / `Closes
#` / `Refs #` OR (b) described the issue in-PR following the relevant
issue template
- [x] I have not referenced internal/instance-local Paperclip issues or
links (only public GitHub `#NNN` / `github.com/paperclipai/paperclip`
URLs)
- [x] My branch name describes the change (e.g. `docs/...`, `fix/...`)
and contains no internal Paperclip ticket id or instance-derived details
- [x] I have run tests locally and they pass (targeted/component checks;
full local-run limitations are recorded above)
- [x] I have added or updated tests where applicable
- [x] I have updated relevant documentation to reflect my changes
- [x] I have considered and documented any risks above
- [x] All Paperclip CI gates are green
- [x] Greptile is 5/5 with no open P2s, recommendations, or follow-ups
- [x] I will address all Greptile and reviewer comments before
requesting merge

---------

Co-authored-by: Paperclip <noreply@paperclip.ing>
2026-10-06 11:48:53 -05:00
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Paperclip is the app people use to manage AI agents for work.

Quickstart · Docs · GitHub · Discord · Twitter · Website

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Sign up for the Paperclip Cloud waitlist →


Paperclip is the app people use to manage AI agents for work.

Open-source orchestration for teams of AI agents.

If OpenClaw is an employee, Paperclip is the company.

Paperclip is a Node.js server and React UI that orchestrates a team of AI agents to run a business. Bring your own agents, assign goals, and track work and costs from one dashboard. Choose models and harnesses per agent while keeping your team's tasks, skills, permissions, and history in one place.

It looks like a task manager. Under the hood: org charts, budgets, governance, goal alignment, and agent coordination.

Manage business goals, not pull requests.

Step Example
01 Define the goal "Build the #1 AI note-taking app to $1M MRR."
02 Hire the team CEO, CTO, engineers, designers, marketers — any bot, any provider.
03 Approve and run Review strategy. Set budgets. Hit go. Monitor from the dashboard.

Works
with
OpenClaw
OpenClaw
Claude Code
Claude Code
Codex
Codex
Cursor and Cursor Cloud
Cursor
+ Cloud
Gemini CLI
Gemini CLI
OpenCode
OpenCode
Pi
Pi
Hermes and Hermes Gateway
Hermes
+ Gateway
Grok Build
Grok Build
Kimi Code
Kimi Code

If it can receive a heartbeat, it's hired.

Custom processes, HTTP endpoints, and external adapter packages extend the roster. See the adapter overview for setup and capabilities.


Paperclip is right for you if

  • ✅ You want to build autonomous AI organizations
  • ✅ You coordinate many different agents (OpenClaw, Codex, Claude, Cursor) toward a common goal
  • ✅ You have 20 simultaneous Claude Code terminals open and lose track of what everyone is doing
  • ✅ You want agents running autonomously 24/7, but still want to audit work and chime in when needed
  • ✅ You want to monitor costs and enforce budgets
  • ✅ You want a process for managing agents that feels like using a task manager
  • ✅ You want to manage your autonomous businesses from your phone

The four pillars

Four things have to work for an organization of AI agents to actually produce: the tasks, the org, the training, and the infrastructure. Paperclip is built around exactly those four pillars.

The four pillars of Paperclip
Pillar Built for What it covers
Agentic Task Manager — Declare intent. Agents work. You verify the output. Everyone, daily Tasks, approvals & review gates · proactive agent coworkers · auditable routines & workflows · verify from diffs, screenshots & tests
Org Chart for Agents — Roles, permissions & boundaries for humans and agents. Managers Mixed human + agent org chart · responsibilities, delegation, specialization · governance: who can do what · scoped secrets & company boundaries · connection permissions & responsible-user identities
Agent Employee Training — Design, train & evaluate your AI employees. Enablers Skill Studio & shared org-wide skills · evals & saved test runs · active learning loops & quality metrics · performance reviews for agents · saved test inputs · skill version history & restore · reusable team templates
Agentic OS — The infrastructure that makes the work run. IT & platform Cross-provider runtime: any model, any agent · sandboxing, integrations & MCP servers · SSO, GRC, RBAC & cost controls · data privacy, internal trace collection, compounding data value · personal & shared app connections · run history & opt-in tracing

Features

🔌 Bring Your Own Agent

Any agent, any runtime, one org chart. If it can receive a heartbeat, it's hired.

🎯 Goal Alignment

Link tasks and projects to your organization goals. Agents receive the goal context behind their work.

💓 Heartbeats

Agents wake for assigned work, follow-up messages, or configured schedules. Delegation flows up and down the org chart.

💰 Cost Control

Company, agent, and project budgets. Track reported spend, get threshold alerts, and pause work at configured limits.

🏢 Multi-Organization

One deployment, many organizations. Separate tasks, agents, permissions, and activity histories for each.

🎫 Task Threads

Keep conversations, plans, blockers, files, and run history attached to the work. Assign tasks to agents or people.

🛡️ Governance

Configure review and approval stages, approve hires, and pause, reassign, or stop work when needed.

📊 Org Chart

Hierarchies, roles, reporting lines. Your agents have a boss, a title, and a job description.

📱 Mobile Ready

Monitor and manage your autonomous businesses from anywhere.

🔗 Apps & Connections

Connect services such as GitHub, Notion, and Railway, or your own MCP server. Set gateway actions to Allowed, Ask first, or Off.

👥 Shared Agents, Personal Accounts

Choose who can use a connection and which agents can access it. Managed GitHub operations can use the account of the person directing the work.

🧠 Skills & Skill Studio

Install or write shared skills, test them with saved inputs, inspect results, and restore earlier versions.

📅 Scheduled Routines

Run recurring work on a schedule or trigger it through an API or webhook. Each run has a task, an owner, and a history.

📎 Artifacts & Feedback

Find the files and documents agents produce. Preview supported formats and leave comments on specific passages in documents.

📦 Ready-Made Teams

Preview and install teams with roles, skills, projects, and routines. Choose their runtimes and make the setup your own.

Experimental Agent Chat and chat/email connectors add conversations with agents in Paperclip and through configured services such as Slack, Discord, Telegram, and AgentMail. Enable the relevant instance settings to try them.


Problems Paperclip solves

Without Paperclip With Paperclip
❌ You have 20 Claude Code tabs open and can't track which one does what. On reboot you lose everything. ✅ Tasks are ticket-based, conversations are threaded, sessions persist across reboots.
❌ You manually gather context from several places to remind your bot what you're actually doing. ✅ Context flows from the task up through the project and company goals — your agent always knows what to do and why.
❌ Folders of agent configs are disorganized and you're re-inventing task management, communication, and coordination between agents. ✅ Paperclip gives you org charts, ticketing, delegation, and governance out of the box — so you run a company, not a pile of scripts.
❌ Runaway loops waste hundreds of dollars of tokens and max your quota before you even know what happened. ✅ Spend tracking, budget alerts, and automatic pauses help you control the cost of ongoing work.
❌ You have recurring jobs (customer support, social, reports) and have to remember to manually kick them off. ✅ Routines create assigned tasks on a schedule, with outputs and run history you can inspect.
❌ You have an idea, you have to find your repo, fire up Claude Code, keep a tab open, and babysit it. ✅ Add a task in Paperclip. Your coding agent works on it until it's done. Management reviews their work.

Why Paperclip is special

Paperclip handles the hard orchestration details correctly.

Atomic task checkout. A single assignee and execution locks prevent competing runs from claiming the same task.
Persistent work context. Tasks, comments, and documents stay in Paperclip. Supporting adapters resume saved sessions across runs.
Runtime skill injection. Agents can learn Paperclip workflows and project context at runtime, without retraining.
Governance with rollback. Approval gates are enforced, config changes are revisioned, and bad changes can be rolled back safely.
Accountable connections. Human access, agent eligibility, and gateway action permissions are separate controls. Approve a call once or save a revocable rule.
Goal-aware execution. Linked tasks and projects carry goal ancestry so agents see the "why," not just a title.
Portable company templates. Export/import orgs, agents, and skills with secret scrubbing and collision handling.
Organization boundaries. Company-scoped access checks keep each organization's work, agents, and activity separate within one deployment.

What's Under the Hood

Paperclip is a full control plane, not a wrapper. Before you build any of this yourself, know that it already exists:

┌──────────────────────────────────────────────────────────────┐
│                       PAPERCLIP SERVER                       │
│                                                              │
│  ┌───────────┐  ┌───────────┐  ┌───────────┐  ┌───────────┐  │
│  │Identity & │  │  Work &   │  │ Heartbeat │  │Governance │  │
│  │  Access   │  │   Tasks   │  │ Execution │  │& Approvals│  │
│  └───────────┘  └───────────┘  └───────────┘  └───────────┘  │
│                                                              │
│  ┌───────────┐  ┌───────────┐  ┌───────────┐  ┌───────────┐  │
│  │ Org Chart │  │Workspaces │  │  Plugins  │  │  Budget   │  │
│  │ & Agents  │  │ & Runtime │  │           │  │ & Costs   │  │
│  └───────────┘  └───────────┘  └───────────┘  └───────────┘  │
│                                                              │
│  ┌───────────┐  ┌───────────┐  ┌───────────┐  ┌───────────┐  │
│  │ Routines  │  │ Secrets & │  │ Activity  │  │  Company  │  │
│  │& Schedules│  │  Storage  │  │ & Events  │  │Portability│  │
│  └───────────┘  └───────────┘  └───────────┘  └───────────┘  │
└──────────────────────────────────────────────────────────────┘
         ▲              ▲              ▲              ▲
   ┌─────┴─────┐  ┌─────┴─────┐  ┌─────┴─────┐  ┌─────┴─────┐
   │  Claude   │  │   Codex   │  │   CLI     │  │ HTTP/web  │
   │   Code    │  │           │  │  agents   │  │   bots    │
   └───────────┘  └───────────┘  └───────────┘  └───────────┘

The Systems

Identity & Access — Two deployment modes (trusted local or authenticated), human roles and permissions, agent API keys, short-lived run JWTs, company memberships, and invite flows. Responsible-user attribution follows work through delegation and supported managed connections.

Org Chart & Agents — Agents have roles, titles, reporting lines, permissions, and budgets. Adapter examples match the diagram: Claude Code, Codex, CLI agents such as Cursor/Gemini/bash, HTTP/webhook bots such as OpenClaw, and external adapter plugins. If it can receive a heartbeat, it's hired.

Work & Task System — Issues carry company/project/goal/parent links, atomic checkout with execution locks, first-class blocker dependencies, comments, documents, attachments, work products, labels, and inbox state. Search across work, review document revisions, and leave anchored feedback.

Heartbeat Execution — DB-backed wakeup queue with coalescing, budget checks, workspace resolution, secret injection, skill loading, and adapter invocation. Runs produce logs, usage records, and adapter-specific session state. Bounded recovery handles supported failures and surfaces cases that need human action.

Workspaces & Runtime — Project repositories and workspaces, optional isolated execution workspaces (git worktrees, operator branches), and runtime services (dev servers, preview URLs). Sandbox providers extend execution beyond the local host; availability depends on the configured environment and adapter.

Governance & Approvals — Board approval workflows, execution policies with review/approval stages, decision tracking, budget hard-stops, and agent pause/resume/terminate. Configured task reviews govern completion; connection action approvals govern calls through the tool gateway.

Budget & Cost Control — Token and cost tracking by company, agent, project, goal, issue, provider, and model. Scoped budget policies with warning thresholds and hard stops. Enforcement uses recorded spend; usage reporting and in-flight work can delay a stop.

Routines & Schedules — Recurring tasks with cron, webhook, and API triggers. Concurrency and catch-up policies. Each routine execution creates a tracked issue and wakes the assigned agent — no manual kick-offs needed.

Plugins — Instance-wide plugin system with out-of-process workers, capability-gated host services, job scheduling, tool exposure, and UI contributions. Extend Paperclip without forking it.

Secrets & Storage — Company secrets and per-person secret values, encrypted credential storage, local or S3-compatible file storage, attachments, and work products. Secret references supply credentials to authorized runs without copying values into ordinary agent configuration.

Activity & Events — Mutating actions, heartbeat state changes, cost events, approvals, comments, and work products are recorded as durable activity so operators can audit what happened and why.

Company Portability — Preview, export, and import organization packages with agents, skills, and optional projects, routines, tasks, and attachments. Referenced secret values are omitted; review packages before sharing because plain environment values and local paths can remain. Packages share an operating setup; full-instance recovery uses backups.


What Paperclip is not

Not just a chatbot. Conversations stay attached to tasks, plans, decisions, and outputs. Experimental Agent Chat can hand work off to assigned tasks.
Not an agent framework. We don't tell you how to build agents. We tell you how to run a company made of them.
Not just a workflow builder. Routines and experimental pipelines operate within an organization, with roles, goals, budgets, and governance.
Not a prompt manager. Agents bring their own prompts, models, and runtimes. Paperclip manages the organization they work in.
Not limited to one agent. Start with one agent and grow into a team with shared skills, delegation, and review.
Not only for code review. Coding and PR review fit alongside research, operations, content, and other work.

Quickstart

Open source. Self-hosted. No Paperclip account required. Follow the guided quickstart to set up your first agent.

Just ask your agent to install Paperclip

Share the installation guide with your agent.

Or install it yourself

With Node.js 24.11 or newer installed:

npx paperclipai@latest onboard --yes

The CLI runs from npm's cache; your instance configuration and data persist locally.

See the installation guide for managed installs, pinned versions, canary and git-ref installs, updates, rollback, service management, and uninstalling.

For an isolated manual test instance that is already initialized with a CEO agent, use test-drive. It stays in the foreground, never installs a service or creates a first task, and opens the browser only after setup succeeds:

ANTHROPIC_API_KEY=... npx paperclipai test-drive
OPENAI_API_KEY=... npx paperclipai test-drive --harness codex
OPENROUTER_API_KEY=... npx paperclipai test-drive \
  --harness opencode \
  --model openrouter/anthropic/claude-sonnet-4.5

Each run without --data-dir gets a unique, retained temporary directory; its absolute path is printed at startup. Pass --data-dir to reuse one, or --no-browser to leave the initialized instance unopened. When invoked from a linked Git worktree, test-drive also enables task execution in that worktree. See the test-drive guide for credential and reuse behavior.

Troubleshooting: private npm registry .npmrc

If this fails with an E404 for paperclipai (or similar) and you use a private npm registry (for example GitHub Packages) via a global ~/.npmrc, npx may be resolving paperclipai against that private registry instead of the public npm registry.

Diagnostic:

npm config get registry

Workaround (cross-platform; force the public npm registry for this command):

npx --registry https://registry.npmjs.org paperclipai@latest onboard --yes

That quickstart path now defaults to trusted local loopback mode for the fastest first run. To start in authenticated/private mode instead, choose a bind preset explicitly:

npx paperclipai@latest onboard --yes --bind lan
# or:
npx paperclipai@latest onboard --yes --bind tailnet

If you already have Paperclip configured, rerunning onboard keeps the existing config in place. Use npx paperclipai configure to edit settings.

Or manually:

git clone https://github.com/paperclipai/paperclip.git
cd paperclip
pnpm install
pnpm dev

This starts the UI and API at http://localhost:3100. An embedded PostgreSQL database is created automatically — no setup required.

Requirements: Node.js 24.11+, pnpm 9.15+

Source development also builds the native Paperclip Runner when enabled (the self-hosted default). Install a Rust toolchain, or set PAPERCLIP_RUNNER_BINARY to a compatible prebuilt runner.


FAQ

Q: Is this project maintained or just slop?

A: Paperclip is maintained by the Paperclip team. We've merged over 2,700 pull requests.


Q: What does a typical setup look like?

A: Locally, a single Node.js process manages an embedded Postgres and local file storage. For production, point it at your own Postgres and deploy however you like. Configure projects, agents, and goals — the agents take care of the rest.

For remote access, use authenticated mode with a private-network bind such as Tailscale, or deploy the persistent server with Docker. See deployment modes and the Docker guide.


Q: Can I run multiple companies?

A: Yes. A single deployment can host multiple organizations with company-scoped data and access checks.


Q: How is Paperclip different from agents like OpenClaw or Claude Code?

A: Paperclip uses those agents. It orchestrates them into a company — with org charts, budgets, goals, governance, and accountability.


Q: Why should I use Paperclip instead of just pointing my OpenClaw to Asana or Trello?

A: Agent orchestration has subtleties in how you coordinate who has work checked out, how to maintain sessions, monitoring costs, establishing governance - Paperclip does this for you.

(Bring-your-own-ticket-system is on the Roadmap)


Q: Do agents run continuously?

A: Agents wake for assigned work and follow-up messages. Optional timer heartbeats let them check for work periodically; routines create recurring tasks on their own schedules. You can also connect externally running agents such as OpenClaw. A mention alone does not assign work or wake another agent.


Development

pnpm dev              # Full dev (API + UI, watch mode)
pnpm dev:once         # Full dev without file watching
pnpm dev:server       # Server only
pnpm dev:mobile       # Serve prebuilt UI on :3101 for phones/tablets (proxies /api → :3100)
pnpm dev:both         # Run `pnpm dev` and `pnpm dev:mobile` together
pnpm build            # Build all
pnpm typecheck        # Type checking
pnpm test             # Cheap default test run (Vitest only)
pnpm test:watch       # Vitest watch mode
pnpm test:e2e         # Playwright browser suite
pnpm db:generate      # Generate DB migration
pnpm db:migrate       # Apply migrations

pnpm test does not run Playwright. Browser suites stay separate and are typically run only when working on those flows or in CI.

See doc/DEVELOPING.md for the full development guide.


Roadmap

  • ✅ Plugin system (e.g. add a knowledge base, custom tracing, queues, etc)
  • ✅ Get OpenClaw / claw-style agent employees
  • ✅ companies.sh - import and export entire organizations
  • ✅ Easy AGENTS.md configurations
  • ✅ Skills Manager, Skill Studio & Skills Store
  • ✅ Scheduled Routines
  • ✅ Better Budgeting
  • ✅ Agent Reviews and Approvals
  • ✅ Multiple Human Users
  • ✅ Cloud / Sandbox agents (e2b, Cloudflare, Daytona, Modal, Novita, self-hosted Kubernetes)
  • ✅ Artifacts & Work Products
  • ✅ Deep Planning (planning mode, revisioned plans, plan approvals)
  • ✅ Enforced Outcomes (watchdogs, recovery actions, review gates)
  • ✅ MCP Tool Gateway & Apps (governed tool access)
  • ✅ Secrets Manager with per-agent access
  • ✅ Activity log & action attribution
  • ✅ Self-healing runs & automatic recovery
  • ✅ Agent evals & feedback
  • ✅ Connected Apps
  • ✅ Personal & Shared AI Accounts
  • ✅ Shared Agents Use Personal GitHub Identities
  • ✅ Skill Version History & Restore
  • ✅ Document Comments & Revision History
  • ✅ Company-Wide Search
  • ✅ Multi-Model & Multi-Harness Teams
  • 🟡 Memory / Knowledge
  • ⚪ MAXIMIZER MODE
  • ⚪ Work Queues
  • ⚪ Self-Organization
  • ⚪ Automatic Organizational Learning
  • 🟡 Agent Chat
  • 🟡 Cloud deployments
  • ⚪ Desktop App
  • ⚪ Bring-your-own-ticket-system (Asana / Linear / Jira as on-ramps)

This is the short roadmap preview. See the full roadmap in ROADMAP.md.


Community & Plugins

Find Plugins and more at awesome-paperclip

Observability

Paperclip ships with opt-in OpenTelemetry auto-instrumentation for the server (traces only). It activates when OTEL_EXPORTER_OTLP_ENDPOINT is set and supports grpc, http/protobuf, and http/json via the standard OTEL_EXPORTER_OTLP_PROTOCOL env var. @opentelemetry/api is a normal server dependency; the SDK, auto-instrumentation, and exporter packages are optional peer dependencies — install them only if you want tracing. See doc/observability.md for install commands and the full env-var reference.

Paperclip also ships with opt-in Sentry error monitoring for the server and the browser. Set SENTRY_DSN_FRONTEND to activate it for the browser and SENTRY_DSN_BACKEND to activate it for the server — each variable is optional, and the legacy SENTRY_DSN variable still works as a fallback for either component. The supported server SDK version is @sentry/node@10.71.0; it is an optional peer dependency for the server, so install it only if you want error monitoring. The browser SDK, @sentry/browser, is pinned to the same exact version. See doc/observability.md for the install command, the privacy settings, and the full default capture set.

Telemetry

Paperclip collects anonymous usage telemetry to help us understand how the product is used and improve it. No personal information, issue content, prompts, file paths, or secrets are ever collected. Private repository references are hashed with a per-install salt before being sent.

Contributors changing emitted telemetry events should follow the Telemetry Data Contract. For proposed first-party events that are not in the generated contract yet, follow Telemetry Workflow.

Telemetry is enabled by default and can be disabled with any of the following:

Method How
Environment variable PAPERCLIP_TELEMETRY_DISABLED=1
Standard convention DO_NOT_TRACK=1
CI environments Automatically disabled when CI=true
Config file Set telemetry.enabled: false in your Paperclip config

Contributing

We welcome contributions. See the contributing guide for details.

We're hiring


Community


License

MIT © 2026 Paperclip Labs, Inc

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