Jordan Frazier a9a09f491b refactor: Align deployments telemetry with existing langflow patterns
- DeploymentPayload: replace deployment_error_type (class name) with
  deployment_error_message: str (captures str(exc)) to match
  RunPayload/PlaygroundPayload shape; switch deployment_seconds from
  float to int for consistency with other payloads.
- TelemetryService: collapse log_package_deployment_provider and
  log_package_deployment_run into a single log_package_deployment so
  payload type maps to one Scarf path (the action is already carried in
  DeploymentPayload.deployment_action).
- deployments.py: replace the yield-based FastAPI Depends factory with
  an @asynccontextmanager helper (_track_deployment_telemetry) used
  inline via `async with` in each of the 8 instrumented routes. Emits
  telemetry via `await telemetry_service.log_package_deployment(...)`
  inside the CM's finally, matching the endpoints.py:282 inline-await
  pattern. background_tasks.add_task was rejected because FastAPI drops
  background tasks when the handler raises, which would silently lose
  all failure telemetry.
- Tests updated for the new payload fields, single service method,
  and inline-await emission.
2026-04-24 11:59:13 -04:00
2026-04-23 17:49:53 -07:00
2026-04-23 17:49:53 -07:00
2026-04-23 17:49:53 -07:00
2026-04-13 23:23:37 +00:00

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Langflow is a powerful platform for building and deploying AI-powered agents and workflows. It provides developers with both a visual authoring experience and built-in API and MCP servers that turn every workflow into a tool that can be integrated into applications built on any framework or stack. Langflow comes with batteries included and supports all major LLMs, vector databases and a growing library of AI tools.

Highlight features

  • Visual builder interface to quickly get started and iterate.
  • Source code access lets you customize any component using Python.
  • Interactive playground to immediately test and refine your flows with step-by-step control.
  • Multi-agent orchestration with conversation management and retrieval.
  • Deploy as an API or export as JSON for Python apps.
  • Deploy as an MCP server and turn your flows into tools for MCP clients.
  • Observability with LangSmith, LangFuse and other integrations.
  • Enterprise-ready security and scalability.

🖥️ Langflow Desktop

Langflow Desktop is the easiest way to get started with Langflow. All dependencies are included, so you don't need to manage Python environments or install packages manually. Available for Windows and macOS.

📥 Download Langflow Desktop

Quickstart

Requires Python 3.103.13 and uv (recommended package manager).

Install

From a fresh directory, run:

uv pip install langflow -U

The latest Langflow package is installed. For more information, see Install and run the Langflow OSS Python package.

Run

To start Langflow, run:

uv run langflow run

Langflow starts at http://127.0.0.1:7860.

That's it! You're ready to build with Langflow! 🎉

📦 Other install options

Run from source

If you've cloned this repository and want to contribute, run this command from the repository root:

make run_cli

For more information, see DEVELOPMENT.md.

Docker

Start a Langflow container with default settings:

docker run -p 7860:7860 langflowai/langflow:latest

Langflow is available at http://localhost:7860/. For configuration options, see the Docker deployment guide.

🛡️ Security

For security information, see our Security Policy.

🚀 Deployment

Langflow is completely open source and you can deploy it to all major deployment clouds. To learn how to deploy Langflow, see our Langflow deployment guides.

Stay up-to-date

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👋 Contribute

We welcome contributions from developers of all levels. If you'd like to contribute, please check our contributing guidelines and help make Langflow more accessible.


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Langflow is a powerful tool for building and deploying AI-powered agents and workflows.
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