D

Databricks MCP Server

An MCP server that connects to the Databricks API, supporting functions such as executing SQL queries and managing jobs, and providing data interaction capabilities for LLMs.
2.5 points
29

What is the Databricks MCP Server?

This is an intelligent interface service that opens up the capabilities of the Databricks data platform to non - technical users through natural language interaction. By connecting to a large language model (LLM), users can query data and monitor tasks in everyday language without writing code.

How to use the Databricks MCP Server?

Simply install, configure, and start the service. Any AI assistant compatible with the MCP protocol can interact with your Databricks environment through natural language instructions. The system automatically converts requests into API calls and returns structured results.

Use cases

It is very suitable for scenarios where instant data access is required but users lack a technical background, such as business analysts viewing data reports, team leaders monitoring data processing tasks, and data engineers quickly verifying query results.

Main features

SQL query executionSecurely run queries on the Databricks SQL warehouse through natural language instructions, which are automatically converted into optimized SQL statements.
Task monitoringView the status, historical records, and detailed configuration information of all data processing tasks in real - time.
Natural language interactionSupports querying data in everyday English or Chinese without memorizing specific command syntax.

Advantages and limitations

Advantages
Lower the technical threshold, allowing business personnel to directly obtain data insights
Fast response speed, directly connecting to the Databricks native API
Conversational interaction is more in line with human natural communication habits
Fine - grained permission control ensures data security
Limitations
Databricks access credentials need to be pre - configured
Professional SQL knowledge is still required for complex analysis scenarios
Technical assistance is required for the initial setup

How to use

Environment preparation
Ensure that Python 3.7+ is installed and you have access to the Databricks workspace.
Installation and configuration
Clone the repository and install dependencies. Configure your Databricks credentials in the.env file.
Start the service
Run the main program to start the MCP protocol server.
Connect the AI assistant
Configure the server address in the MCP - compatible client application to start interacting.

Usage examples

Sales data analysisThe marketing team needs to instantly understand the sales performance of the day.
Task status checkThe project manager monitors the overnight data processing tasks.

Frequently Asked Questions

How to obtain Databricks access credentials?
Is there a limit on the number of rows in the query results?
Does the service support multiple users accessing simultaneously?

Related resources

Databricks official documentation
A complete guide to using the Databricks platform
MCP protocol specification
Technical standard documentation for the Model Context Protocol
Example project repository
Contains more configuration examples and extended functions
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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