dbt-mcp

by dbt-labsVerified

A MCP (Model Context Protocol) server for interacting with dbt.

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8/23/2026
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⚠️ Third-Party Software Notice

This skill is third-party open-source software developed and hosted independently on GitHub. SkillTip is an informational directory and does not control or maintain the underlying repository. Any security checks displayed are automated and limited in scope. Review the source code before installing.

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Installation

Add to your Claude Code skills directory:

# Add to your Claude Code skills
git clone https://github.com/dbt-labs/dbt-mcp

Getting Started

Guides for using skills like dbt-mcp.

Security Report

Verified

Last scanned: —

{
  "status": "PASSED",
  "issues": []
}

README.md

dbt MCP Server

OpenSSF Best Practices

This MCP (Model Context Protocol) server provides various tools to interact with dbt. You can use this MCP server to provide AI agents with context of your project in dbt Core, dbt Fusion, and dbt Platform.

Read our documentation here to learn more. This blog post provides more details for what is possible with the dbt MCP server.

Experimental MCP Bundle

We publish an experimental Model Context Protocol Bundle (dbt-mcp.mcpb) with each release so that MCPB-aware clients can import this server without additional setup. Download the bundle from the latest release assets and follow Anthropic's mcpb CLI docs to install or inspect it.

Feedback

If you have comments or questions, create a GitHub Issue or join us in the community Slack in the #tools-dbt-mcp channel.

Architecture

The dbt MCP server architecture allows for your agent to connect to a variety of tools.

architecture diagram of the dbt MCP server

Tools

SQL

Tools for executing and generating SQL on dbt Platform infrastructure.

  • execute_sql: Executes SQL on dbt Platform infrastructure with Semantic Layer support.
  • text_to_sql: Generates SQL from natural language using project context.

Semantic Layer

To learn more about the dbt Semantic Layer, click here.

  • get_dimension_values: Gets distinct values for a dimension; option to scope to specific metrics.
  • get_dimensions: Gets dimensions for specified metrics.
  • get_entities: Gets entities for specified metrics.
  • get_metrics_compiled_sql: Returns compiled SQL for metrics without executing the query.
  • list_metrics: Retrieves all defined metrics.
  • list_saved_queries: Retrieves all saved queries.
  • query_metrics: Executes metric queries with filtering and grouping options.

Discovery

To learn more about the dbt Discovery API, click here.

  • get_all_macros: Retrieves macros; option to filter by package or return package names only.
  • get_all_models: Retrieves name and description of all models.
  • get_all_sources: Gets all sources with freshness status; option to filter by source name.
  • get_exposure_details: (deprecated — use get_node_details instead)
  • get_exposures: Gets all exposures (downstream dashboards, apps, or analyses).
  • get_lineage: Gets full lineage graph (ancestors and descendants) with type and depth filtering.
  • get_macro_details: (deprecated — use get_node_details instead)
  • get_mart_models: Retrieves all mart models.
  • get_model_children: (deprecated — use get_lineage instead)
  • get_model_details: (deprecated — use get_node_details instead)
  • get_model_health: Gets health signals: run status, test results, and upstream source freshness.
  • get_model_parents: (deprecated — use get_lineage instead)
  • get_model_performance: Gets execution history for a model; option to include test results.
  • get_node_details: Gets full details for any dbt resource type (model, source, exposure, test, seed, snapshot, macro, semantic_model).
  • get_related_models: Finds similar models using semantic search.
  • get_seed_details: (deprecated — use get_node_details instead)
  • get_semantic_model_details: (deprecated — use get_node_details instead)
  • get_snapshot_details: (deprecated — use get_node_details instead)
  • get_source_details: (deprecated — use get_node_details instead)
  • get_test_details: (deprecated — use get_node_details instead)
  • search: [Alpha] Searches for resources across the dbt project (not generally available).

dbt CLI

Allowing your client to utilize dbt commands through the MCP tooling could modify your data models, sources, and warehouse objects. Proceed only if you trust the client and understand the potential impact.

  • build: Executes models, tests, snapshots, and seeds in DAG order.
  • clone: Clones selected nodes from the specified state to the target schema(s).
  • compile: Generates executable SQL from models/tests/analyses; useful for validating Jinja logic.
  • docs: Generates documentation for the dbt project.
  • get_lineage_dev: Retrieves lineage from local manifest.json with type and depth filtering.
  • get_node_details_dev: Retrieves node details from local manifest.json (models, seeds, snapshots, sources).
  • list: Lists resources in the dbt project by type with selector support.
  • parse: Parses and validates project files for syntax correctness.
  • run: Executes models to materialize them in the database.
  • show: Executes SQL against the database and returns results.
  • test: Runs tests to validate data and model integrity.

Admin API

To learn more about the dbt Administrative API, click here.

  • cancel_job_run: Cancels a running job.
  • get_job_details: Gets job configuration including triggers, schedule, and dbt commands.
  • get_job_run_details: Gets run details including status, timing, steps, and artifacts.
  • get_job_run_error: Gets error and/or warning details for a job run; option to include or show warnings only.
  • list_job_run_artifacts: Lists available artifacts from a job run.
  • list_jobs: Lists jobs in a dbt Platform account; option to filter by project or environment.
  • list_jobs_runs: Lists job runs; option to filter by job, status, or order by field.
  • list_projects: Lists all projects in the dbt Platform account.
  • retry_job_run: Retries a failed job run.
  • trigger_job_run: Triggers a job run; option to override git branch, schema, or other settings.

dbt Codegen

These tools help automate boilerplate code generation for dbt project files.

  • generate_model_yaml: Generates model YAML with columns; option to inherit upstream descriptions.
  • generate_source: Generates source YAML by introspecting database schemas; option to include columns.
  • generate_staging_model: Generates staging model SQL from a source table.

dbt LSP

A set of tools that leverage the Fusion engine for advanced SQL compilation and column-level lineage analysis.

  • fusion.compile_sql: Compiles SQL in project context via dbt Platform.
  • fusion.get_column_lineage: Traces column-level lineage via dbt Platform.
  • get_column_lineage: Traces column-level lineage locally (requires dbt-lsp via dbt Labs VSCE).

Product Docs

Tools for searching and fetching content from the official dbt documentation at docs.getdbt.com.

  • get_product_doc_pages: Fetches the full Markdown content of one or more docs.getdbt.com pages by path or URL.
  • search_product_docs: Searches docs.getdbt.com for pages matching a query; returns titles, URLs, and descriptions ranked by relevance. Use get_product_doc_pages to fetch full content.

MCP Server Metadata

These tools provide information about the MCP server itself.

  • get_mcp_server_branch: Returns the current git branch of the running dbt MCP server.
  • get_mcp_server_version: Returns the current version of the dbt MCP server.

Examples

Commonly, you will connect the dbt MCP server to an agent product like Claude or Cursor. However, if you are interested in creating your own agent, check out the examples directory for how to get started.

Dependencies

Dependencies are pinned to specific versions and are not updated automatically. Only security-related dependency updates are submitted via automated pull requests.

Contributing

Read CONTRIBUTING.md for instructions on how to get involved!

Frequently Asked Questions

What is dbt-mcp?

dbt-mcp is an open-source mcp servers skill for AI coding assistants such as Claude Code, Codex CLI, and ChatGPT, built by dbt-labs. A MCP (Model Context Protocol) server for interacting with dbt. It has 598 GitHub stars.

Is dbt-mcp safe to use?

Yes. dbt-mcp passed SkillsLLM's automated security scan — a dependency vulnerability audit plus prompt-injection heuristics — with no high-severity issues. You can read the full report in the Security Report section on this page.

How do I install dbt-mcp?

Clone the repository with "git clone https://github.com/dbt-labs/dbt-mcp" and add it to your Claude Code skills directory (see the Installation section above).

What programming language is dbt-mcp written in?

dbt-mcp is primarily written in Python. It is open-source under dbt-labs on GitHub, so you can review or fork the full source.

Are there alternatives to dbt-mcp?

Yes. SkillsLLM lists many other MCP Servers skills you can browse and compare side by side. Open the MCP Servers category from the badge at the top of this page, or use the Related Skills and comparison links further down to weigh dbt-mcp against similar tools.

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