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MCP-Server-MLFlow
MCP服务器用于访问MLFlow提示提示提示注册表中的提示
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MLflow Prompt Registry MCP Server
Model Context Protocol (MCP) Server for MLflow Prompt Registry, enabling access to prompt templates managed in MLflow.
This server implements the MCP Prompts specification for discovering and using prompt templates from MLflow Prompt Registry. The primary use case is to load prompt templates from MLflow in Claude Desktop, allowing users to instruct Claude conveniently for repetitive tasks or common workflows.
Tools
-
list-prompts
- List available prompts
- Inputs:
-
cursor
(optional string): Cursor for pagination -
filter
(optional string): Filter for prompts
-
- Returns: List of prompt objects
-
get-prompt
- Retrieve and compile a specific prompt
- Inputs:
-
name
(string): Name of the prompt to retrieve -
arguments
(optional object): JSON object with prompt variables
-
- Returns: Compiled prompt object
Setup
1: Install MLflow and Start Prompt Registry
Install and start an MLflow server if you haven't already to host the Prompt Registry:
pip install mlflow>=2.21.1
mlflow server --port 5000
2: Create a prompt template in MLflow
If you haven't already, create a prompt template in MLflow following this guide.
3: Build MCP Server
npm install
npm run build
4: Add the server to Claude Desktop
Configure Claude for Desktop by editing claude_desktop_config.json
:
{
"mcpServers": {
"mlflow": {
"command": "node",
"args": ["<absolute-path-to-this-repository>/dist/index.js"],
"env": {
"MLFLOW_TRACKING_URI": "http://localhost:5000"
}
}
}
}
Make sure to replace the MLFLOW_TRACKING_URI
with your actual MLflow server address.
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Reviews

user_Rdt96oNI
The mcp-server-mlflow by B-Step62 is an impressive tool for managing machine learning workflows. Its seamless integration and easy-to-navigate interface significantly streamline the ML project lifecycle. The GitHub repository offers comprehensive documentation and support, making it accessible even for those new to MLflow. Highly recommended for anyone serious about efficient machine learning operations! Check it out here: https://github.com/B-Step62/mcp-server-mlflow