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Tai42 Dynamic Postgres

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Generates safe, scoped PostgreSQL DML tools for FastMCP agents, enabling controlled database interactions without raw SQL.

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Описание

Generates safe, scoped PostgreSQL DML tools for FastMCP agents, enabling controlled database interactions without raw SQL.

README

CI License: Apache 2.0

Schema-driven generator for safe, scoped PostgreSQL DML tools in FastMCP agent systems.

Point it at a PostgreSQL database and it introspects the schema and generates one typed MCP tool per DML operation per table — insert, select, update, delete, plus optional select_joined. The agent gets exactly those tools and nothing else: no raw SQL, no schema changes, no access to tables you didn't expose.

Why

Giving an agent database access usually means choosing between read-only access or risking that the agent runs arbitrary SQL and changes data or settings you never intended. This project gives you a controlled middle ground: a fixed set of generated, validated, parameterized tools scoped to the tables and operations you choose.

What it does

  • Introspects your schema (tables, columns, types, foreign keys, pgvector).
  • Generates a FastMCP tool per DML operation per table, each with a dedicated Pydantic input model derived from the table.
  • Supports rich, injection-safe filtering (WhereFilter) and ordering, including vector KNN search.
  • Excludes chosen columns from generated tool inputs (e.g. id, created_at).
  • Exposes only the generated tools — never raw SQL or DDL.

Security model

[!IMPORTANT] The generated tool layer controls which operations exist; the PostgreSQL role you connect as controls what those operations can physically do. Connect as a dedicated least-privilege role, never a superuser. Read SECURITY.md before deploying.

Highlights, in full detail in SECURITY.md:

  • Filter/order field names are validated against real columns and emitted only as quoted identifiers; values are always bound parameters. There is no path for SQL injection through field names.
  • update/delete require a WHERE filter unless the server is started with --allow-unfiltered.
  • The tool layer does not provide row-level scoping. Use PostgreSQL Row-Level Security and GRANT/REVOKE for that.

Installation

Requires Python 3.13+. Install from PyPI into the environment that runs the server, or run it without installing:

uv add tai42-dynamic-postgres-mcp
uvx --from tai42-dynamic-postgres-mcp tai42-postgres-mcp   # run it without installing

Or from source — clone this repo and add it as an editable dependency, or run the clone with uvx:

git clone https://github.com/tai42ai/tai-dynamic-postgres-mcp   # next to your app checkout
cd /path/to/your/app
uv add --editable ../tai-dynamic-postgres-mcp
uvx --from ../tai-dynamic-postgres-mcp tai42-postgres-mcp

Configuration

Connection and pooling are configured via environment variables:

Variable Default Description
PG_HOST localhost PostgreSQL host
PG_PORT 5432 PostgreSQL port
PG_DB required Database name (no default; startup fails if unset)
PG_USER required Database user, use a least-privilege role (no default)
PG_PASSWORD required Database password (no default; startup fails if unset)
PG_STATEMENT_TIMEOUT 30000 Per-connection statement_timeout in ms (0 disables)
PG_POOL_MIN_SIZE 1 Minimum pooled connections
PG_POOL_MAX_SIZE 10 Maximum pooled connections
PG_POOL_TIMEOUT 10 Pool acquire timeout (seconds)
PG_POOL_MAX_LIFETIME 300 Max connection lifetime (seconds)
TOOLS_DIR ~/.cache/tai42-dynamic-postgres-mcp/tools Where generated tool files are written

CLI options

Flag Default Description
--overwrite / --no-overwrite on Regenerate the tool files on startup so they reflect the current schema. Pass --no-overwrite to reuse existing generated files
--readonly off Generate only select/select_joined tools
--allow-unfiltered off Allow update/delete to run without a WHERE filter (affects every row)
--select-joined a,b,c Generate a joined select over the given tables (repeatable)
--ignore-insert-column id Column to exclude from insert inputs (repeatable)
--ignore-update-column id Column to exclude from update inputs (repeatable)
--ignore-select-column Column to exclude from select output models (repeatable)
--ignore-select-joined-column Column to exclude from joined select models (repeatable)
-t, --transport stdio stdio, http, sse, or streamable-http
--host 127.0.0.1 Bind host (HTTP/SSE transports only)
--port 8000 Bind port (HTTP/SSE transports only)

Usage with an MCP client

{
  "mcpServers": {
    "postgres": {
      "command": "uvx",
      "args": [
        "--from",
        "tai42-dynamic-postgres-mcp",
        "tai42-postgres-mcp",
        "--readonly"
      ],
      "env": {
        "PG_HOST": "localhost",
        "PG_PORT": "5432",
        "PG_DB": "dbname",
        "PG_USER": "agent",
        "PG_PASSWORD": "password"
      }
    }
  }
}

Generated tools

For a table public.orders you get (unless --readonly):

  • select_public_orders(where, order_by, limit, offset)
  • insert_public_orders(params, raise_on_conflict)
  • update_public_orders(data, where)
  • delete_public_orders(where)

Column types map to native Python: temporal columns to datetime/date/time, uuid to uuid.UUID, numeric/decimal to Decimal, json/jsonb to Any, and array columns to list[...]. insert returns the table's real primary key (a scalar list for a single-column key, a list of lists for a composite key, or the affected row count when the table has no primary key); columns with a database default are omittable. order_by items accept an optional nulls (FIRST/LAST); when unset PostgreSQL's default applies.

Filtering — WhereFilter

select, update, and delete accept a where argument. Field names must be real columns of the table; unknown fields are rejected.

// Simple field filters (implicitly ANDed)
{ "status": { "eq": "open" }, "total": { "gte": 100 } }

// Logical composition
{ "AND": [ { "status": { "eq": "open" } },
           { "OR": [ { "total": { "gt": 1000 } }, { "vip": { "eq": true } } ] } ] }

Supported operators: eq, ne, gt, gte, lt, lte, like, not_like, ilike, not_ilike, in, not_in, between, is_null, and knn (pgvector). Logical keys: AND, OR, NOT.

Vector search (pgvector)

When a column is a vector, filter or order by similarity:

{ "embedding": { "knn": { "query": [0.1, 0.2, 0.3],
                          "distance": "cosine",   // l2 | inner_product | cosine
                          "threshold": 0.5 } } }

Requires the pgvector extension enabled in the database.

Docker

docker build -t tai42-postgres-mcp .
docker run --rm -e PG_HOST=... -e PG_DB=... -e PG_USER=... -e PG_PASSWORD=... \
  tai42-postgres-mcp tai42-postgres-mcp --readonly

Development

See CONTRIBUTING.md.

uv venv --python 3.13
uv pip install --no-sources --group docs --editable ".[dev,test-integration]"
uv run --no-sync ruff check .
uv run --no-sync ruff format --check .
uv run --no-sync pyright
uv run --no-sync pytest --cov --cov-report=term-missing                 # unit tests
uv run --no-sync pytest -m integration  # CRUD tests against real Postgres (needs Docker)
uv run --no-sync mkdocs build --strict  # the docs site

License

Apache-2.0. See LICENSE and NOTICE.

from github.com/tai42ai/tai-dynamic-postgres-mcp

Установка Tai42 Dynamic Postgres

У этого сервера нет опубликованного пакета — он собирается из исходников. Открой репозиторий и следуй инструкции в README.

▸ github.com/tai42ai/tai-dynamic-postgres-mcp

FAQ

Tai42 Dynamic Postgres MCP бесплатный?

Да, Tai42 Dynamic Postgres MCP бесплатный — установка в пару кликов через Unyly без оплаты.

Нужен ли API-ключ для Tai42 Dynamic Postgres?

Нет, Tai42 Dynamic Postgres работает без API-ключей и переменных окружения.

Tai42 Dynamic Postgres — hosted или self-hosted?

Доступен hosted-вариант: Unyly запускает сервер в облаке, локальная установка не обязательна.

Как установить Tai42 Dynamic Postgres в Claude Desktop, Claude Code или Cursor?

Открой Tai42 Dynamic Postgres на unyly.org, выбери вкладку своего клиента (Claude Desktop, Claude Code, Cursor) и нажми Install — конфиг сгенерируется автоматически, без правки JSON.

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