mlflow/skills

searching-mlflow-docs

Searches and retrieves MLflow documentation from the official docs site.

First seen Feb 5, 2026

Installation

$ npx skills add mlflow/skills --skill searching-mlflow-docs

Summary

  • Searches and retrieves MLflow documentation from the official docs site.
  • Use when the user asks about MLflow features, APIs, integrations (LangGraph, LangChain, OpenAI, etc.), tracing, tracking, or requests to look up MLflow documentation.
  • Triggers on "how do I use MLflow with X", "find MLflow docs for Y", "MLflow API for Z".

Similar popular skills

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Also in this package

Other skills from mlflow/skills · top by installs.

npx skills add mlflow/skills

Browse all from mlflow/skills

More details

Agent compatibility

Declared targets from SKILL.md / docs. Unmarked agents are not listed — the skill may still install via the CLI.

Claude Code Not declared
Cursor Not declared
Codex Not declared
GitHub Copilot Not declared
Windsurf Not declared
Gemini CLI Not declared
Cline Not declared
OpenCode Not declared

Repository health

Stars 75
License LICENSE
Default branch main
Open issues 2
Status Active

Package contents

Files included with this skill beyond the listing page.

  • skill md SKILL.md 2,050 B
  • docs SUMMARY.md 356 B

History

  1. First seen on skills.sh
  2. First recorded snapshot · 726 installs

SKILL.md

MLflow Documentation Search

Workflow

  1. Fetch https://mlflow.org/docs/latest/llms.txt to find relevant page paths
  2. Fetch the .md file at the identified path
  3. Present results with verbatim code examples

Step 1: Fetch llms.txt Index

WebFetch(
  url: "https://mlflow.org/docs/latest/llms.txt",
  prompt: "Find links or references to [TOPIC]. List all relevant URLs."
)

Step 2: Fetch Target Documentation

Use the path from Step 1, always with .md extension:

WebFetch(
  url: "https://mlflow.org/docs/latest/[path].md",
  prompt: "Return all code blocks verbatim. Do not summarize."
)

Anti-Patterns

Do not use .html files — Fetch .md source files only.

Do not use WebSearch — Always start from llms.txt; web search returns outdated or third-party content.

Do not use vague prompts — "Extract complete documentation" allows summarization. Use "Return all code blocks verbatim. Do not summarize."

Do not use versioned paths — Always use /docs/latest/, never /docs/3.8/ or other versions unless the user explicitly requests a specific version.

Do not guess URLs — Always verify paths exist in llms.txt before fetching. Never construct documentation paths from assumptions.

Do not follow external links — Stay within mlflow.org/docs. Do not follow links to GitHub, PyPI, or third-party sites.

Do not mix sources — Use only MLflow docs. Do not combine with LangChain docs, OpenAI docs, or other external documentation.

Do not use llms.txt for non-GenAI topics — The llms.txt index covers LLM/GenAI documentation only. For classic ML tracking features, paths may differ.