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Devops MCP Servers

This project is a collection of Model Context Protocol (MCP) servers specifically designed for DevOps tools and platforms. It enables large language models (LLMs) to directly interact with mainstream DevOps systems in a standardized way, achieving automated control of operations such as infrastructure, deployment pipelines, and monitoring.
2.5 points
28

What are DevOps MCP Servers?

DevOps MCP Servers are a set of Model Context Protocol (MCP) server implementations specifically designed for DevOps tools and platforms. These servers enable large language models (LLMs) to directly interact with various DevOps systems, automating and managing operations such as infrastructure, deployment pipelines, and monitoring in a standardized way.

How to use DevOps MCP Servers?

Each MCP server implementation provides a complete set of tools that map to the APIs of the corresponding DevOps platform. You can let LLMs perform complex operations through simple function calls. First, select the required server, configure the API credentials, and then interact with the LLMs through the MCP protocol.

Use cases

Suitable for scenarios that require automating DevOps processes, controlling infrastructure through natural language, simplifying complex operations, and integrating AI capabilities into DevOps workflows.

Main features

Multi-platform supportSupports more than 20 mainstream DevOps platforms and tools, including AWS, Azure, Kubernetes, GitHub, etc.
Standardized APIProvides a unified API interface for different platforms, simplifying the integration work
LLM integrationOptimized for large language models, supports performing complex operations through natural language instructions
Extensible architectureModular design, easy to add support for new platforms

Advantages and limitations

Advantages
Access multiple DevOps tools through a unified interface
Lower the usage threshold through natural language
Improve the efficiency of DevOps automation
Modular design facilitates expansion
Limitations
Requires API credential configuration
Some advanced features may require direct use of the native API
Loading multiple servers simultaneously may affect performance

How to use

Select a server
Select the platform integration you need from the list of available servers
Configure the environment
Install Python 3.7+ and the required dependency packages
Set credentials
Configure the API credentials of the corresponding platform in the.env file
Start the server
Run the startup script of the specific server
Integrate LLM
Configure the LLM (such as Claude) to interact with the server using the MCP protocol

Usage examples

Automated deploymentTrigger a complete CI/CD pipeline through natural language instructions
Infrastructure monitoringQuery and visualize system monitoring data
TroubleshootingAutomatically diagnose and fix common problems

Frequently Asked Questions

What kind of operating environment does the MCP server require?
How to obtain the API credentials for each platform?
Can multiple MCP servers be used simultaneously?
How to add support for a new platform?

Related resources

MCP official documentation
Official documentation and specifications for the Model Context Protocol
FastMCP framework documentation
Documentation for the FastMCP framework implemented in Python
GitHub repository
Project source code and latest updates
Installation
Copy the following command to your Client for configuration
Note: Your key is sensitive information, do not share it with anyone.
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