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vibedasher-mcp

An MCP server that exposes the Vibedasher data engine — datasets, CSV upload + ETL, headless SQL query, and dashboard (viz) management — as tools a customer's AI (Claude Code, Cursor, ...) can drive directly.

This is the control plane (VD-601, PIVOT/PLAN.md EP-6). It wraps the published vibedasher Python SDK and calls only the public, metered /api/v1/* API.

Install: pip install vibedasher-mcp — live on PyPI since 2026-08-09, as are vibedasher (PyPI) and @vibedasher/client (npm).

The eject tools (VD-602) ship in this package, not separately: eject_viz, eject_viz_files, eject_instructions and get_viz_files are registered by register_eject_tools() in eject.py. They pull a viz's code plus an SDK-wiring manifest so your AI can recreate the dashboard natively in your stack.

Tools

Tool What it does
list_datasets List datasets the key can read (id, name, cleanSQLName, status).
get_dataset(dataset_id) One dataset's metadata + column schema.
upload_dataset(name, csv_content, ...) Create a CSV dataset, upload, load, poll to READY.
run_query(sql, dataset_ids, params, type) Explore. Inline alias-only SQL across your datasets (plural, joins allowed) → typed columns + rows in the response. type="wasm" returns a plan of presigned Parquet URLs instead of rows — the credential-free data lane for a standalone build, and the only call that builds a dataset's wasm extract.
run_query_to_file(sql, output_path, dataset_ids, params, format, overwrite) Extract. Same query, but the rows are written to a local CSV/JSONL file and never enter the response — you get back path, rowCount, columns, bytes, truncated. stdio only; absolute paths only; never clobbers without overwrite=True.
list_vizzes(include_unpublished=False) List dashboards.
get_viz(viz_id) One viz's metadata.
create_viz(name, dataset_ids, seed_id/dashboard_config, ...) Create a viz (AI dashboard-build entry).
build_viz(viz_id, branch) Compile a viz branch into a renderable bundle.
eject_viz(viz_id, branch, out_dir, overwrite, max_chars) (eject) The viz's runnable source tree + package.json + Tailwind config + wiring manifest. Pass out_dir — see Delivery.
eject_viz_files(viz_id, paths, branch, out_dir, ...) (eject) Ejected file contents on demand — the follow-up call when eject_viz came back paged.
eject_instructions() (eject) How to recreate an ejected dashboard in your app — the query contract, auth modes, region sharding, and the host-bundler traps.
get_viz_files(viz_id, branch, out_dir, ...) (eject) Raw file tree for a viz branch. Same delivery budget as eject_viz.

Delivery: an ejected tree does not fit in one response

Measured against prod on 2026-08-18: eject_viz(1275) is 44 files / 517,351 characters (~129k tokens) and eject_viz(1282) is 45 files / 556,363 characters (~139k tokens). MCP clients cap a tool result, so the single-shot payload was either dropped outright by a strict client or ate the agent's entire context. Every eject response now carries a delivery block, and the three file tools take the same three parameters.

Mode How Cost
disk (preferred) out_dir=<ABSOLUTE path> ~30k characters regardless of tree size — measured 32,308 for viz 1275
paged (default) omit out_dir; files fills to max_chars (60,000), the rest land in delivery.pendingPaths 10 calls for viz 1275, none over budget
unbounded max_chars=0 the pre-0.2.0 payload, on request only
eject_viz(viz_id=1275, out_dir="/abs/path/to/app/dashboard")   # one call, whole tree on disk

out_dir resolves on the machine running the MCP server; with the standard stdio launch (command: vibedasher-mcp) that is your machine, because the client spawns the server as a local subprocess. Relative paths are refused, existing files are refused unless overwrite=True, and any path escaping out_dir aborts the write before a byte lands.

Paging is the fallback, not the goal: round trips do not reduce total tokens (the content still crosses the model), they only keep each individual response deliverable. Hand delivery.pendingPaths straight back to eject_viz_files(viz_id, paths=...) and repeat until it is empty. A response with a non-empty pendingPaths is a page, not a tree.

Override the budget per call with max_chars or globally with VIBEDASHER_MCP_MAX_RESPONSE_CHARS.

Three data lanes

Pick by what you will do with the rows:

Lane Call What comes back Use it for
Explore run_query(sql, ...) the rows, inline aggregates, samples, schema checks — anything the agent will read
Extract run_query_to_file(sql, output_path=<absolute>, format="csv"|"jsonl") {path, rowCount, columns, bytes, truncated} — never the rows anything loaded, charted or shipped from disk; thousands of rows and up
Static asset run_query(sql, type="wasm") a plan of presigned Parquet URLs, no rows a dashboard you host yourself, querying in-browser with DuckDB-WASM and no key in the bundle

run_query_to_file writes on the machine running the MCP server, which with the standard stdio launch is the agent's own machine (the client spawns the server as a local subprocess). It is refused over --http, where the path would resolve on the server's disk. Both lanes that return counts honour the backend's 100,000-row cap: truncated: true means the rows — in the response or in the file — are a prefix. Parquet output is deliberately not offered: the wasm lane already returns Parquet the server built, and pyarrow is a 40 MB wheel to install for one option.

run_query reuses the SDK's hand-written query() transport (VD-301): the caller never sees inline-vs-presigned delivery, MessagePack, or retries — one call in, typed rows out. Each dataset id resolves server-side to that dataset's cleanSQLName alias under the VD-203 RLS/alias-rewrite; SQL references only aliases.

Auth

API key only, via X-Api-Key (handled by the SDK's create_client). Set:

export VIBEDASHER_API_KEY=...           # mint via `POST /v1/api-keys` or the console
export VIBEDASHER_REGION=eu-central-1   # or us-east-1
# export VIBEDASHER_BASE_URL=...        # optional override (on-prem/staging)

The key is checked at startup: vibedasher-mcp refuses to start without it and prints what to do on stderr, so a key-less server never connects and never advertises tools it cannot serve. It is never logged or echoed in any tool result.

Metering

Every tool hits the public, metered endpoints (create_dataset is credit-gated; run_query is metered via the usage/credits event). The MCP adds no side channel and bypasses no metering.

Run

pip install vibedasher-mcp        # (monorepo dev: also make `vibedasher` importable)
vibedasher-mcp                    # stdio MCP server
# or:  python -m vibedasher_mcp

MCP client config (Claude Code / Cursor):

{
  "mcpServers": {
    "vibedasher": {
      "command": "vibedasher-mcp",
      "env": { "VIBEDASHER_API_KEY": "...", "VIBEDASHER_REGION": "eu-central-1" }
    }
  }
}

Development

The package depends on the sibling SDK at ../sdk/py. Tests wire that path automatically (tests/conftest.py), so from packages/mcp:

python -m pytest tests/ -q

Note: fastmcp is a client-side dependency of this standalone package; it is not bundled into the API Lambdas, so the export_requirements.py step in the root CLAUDE.md does not apply here.

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