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ContextPull

User RatingsBe the first to rate and review this MCP server! Enrichment pendingWe haven’t run our AI enrichment pass on this listing yet, so the overview, use cases, and FAQ below may be sparse or missing. We work through the catalog over time — check back soon.
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Exact document sections on demand for LLM agents: index in context, search, read, grep, neighbours.

Quick Install

Automated & IDE Setup

Copy the AI prompt to install this server into Claude Code, Cursor, or another agent — or use 1-click editor setup below.

One-click editor setup isn’t available for this listing yet — we don’t have a confirmed install command, and we’d rather show nothing than point your editor at the wrong package or host. Follow the project’s own setup instructions, linked above.

Manual Client & Custom JSON ConfigExpand JSON â–¾
No confirmed setup config for this listing yet. We only publish a config block when the install details come from the project itself — its README, its docs, or a verified owner. We haven’t found those for ContextPull, and we’d rather show nothing than a guess you’d paste into your client. Follow the project’s own setup instructions for the current steps.
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Documentation Overview

ContextPull

Website: https://mi2arun.github.io/contextpull/ · demo · docs · MCP Registry io.github.mi2arun/contextpull

Pull, don't push. ContextPull turns a folder of documents into something an LLM agent can pull from the way Claude Code pulls from a codebase: a small index that is always in context, and five tools that return exact sections on demand. The model never receives content it did not ask for.

Zero runtime dependencies. One SQLite file. Works offline.

ContextPull ships with a companion, ragbisect (formerly stagewise): a neutral benchmark harness that builds an eval set from your corpus and scores ContextPull next to bm25, dense and hybrid pipelines. Two names, one project, kept apart so the measurement stays independent of the thing it measures.

Status

M1 to M3 are built: store, ingest, the five operations, CLI, conformance suite, MCP server, Claude Code integration, LLM summaries, protocol client examples, ragbisect adapters, and a TypeScript reader and server. See the roadmap.

Measured

uv documentation, 603 sections, 221 self-generated questions, recall@5, from docs/testing.md:

configrecall@5ms/qmodel tokens/q
hybrid push (dense + bm25)0.964690
bm25 push0.92350
pull, Claude Code (10-question sample)1.00026,56586,656
pull, gpt-5.4-mini with reasoning off0.61516,02310,891

A strong agent reads the right section every time; a small no-reasoning model reads the right section when it reads (NDCG 0.96 given a hit) but misses the gold section on 38% of questions. Push retrieval is nearly free per query; pull costs tens of thousands of tokens. Both facts are in the table on purpose. The model's own searches surfaced the gold section on 88% of a sample, so most of the gap is snippets being answered from rather than read; a stricter prompt did not change that. An earlier version of this table showed 0.045 for the small model; that number came from a threading bug in the benchmark adapter and is retracted in docs/testing.md.

Try it

Fastest: ./scripts/demo.sh ingests the bundled fixture corpus and walks through index, search, read and grep, then prints the exact claude mcp add line. ./scripts/demo.sh ./your-docs does the same on your own folder.

sh
uv tool install contextpull            # or: pip install contextpull   (PyPI: contextpull 0.2.0)
contextpull ingest ./docs              # writes .contextpull/store.sqlite
contextpull index                      # the always-in-context table of contents
contextpull search "refund window" --in policy-2025.md
contextpull read policy-2025.md#3 --context 1
contextpull grep TX-4419
contextpull neighbours specs.md#1
contextpull export-chunks > chunks.jsonl   # ragbisect-compatible sections

In Claude Code

Terminal
claude mcp add contextpull -- uvx --from "contextpull[mcp]" contextpull serve ./docs

The server ingests ./docs into ./docs/.contextpull/store.sqlite, puts the index into its instructions so it is always in context, and exposes the five tools. Ask a question; the trace shows search, then read, then an answer with [path.md#3] citations. contextpull claude-md prints a CLAUDE.md snippet if you want to tell the model about it explicitly. Add --summarizer openai:gpt-5.4-mini for model-written one-line summaries in the index (cached by document hash).

Any other MCP host works the same way; see examples/clients/ for TypeScript, Go and Java protocol clients and examples/direct_api_loop.py for using the tools straight from a model API with no server.

More

sh
uv sync --extra pdf                                             # PDFs: headings inferred from font size
uv run contextpull ingest ./docs --embed-model openai:text-embedding-3-small   # enables: search --mode hybrid
uv run contextpull serve ./docs --transport http --port 8765    # streamable HTTP at /mcp for a shared read-only server

As a library

Embedding it in your own product, with access control and air-gap notes: docs/embedding.md and examples/embed_with_acl.py.

server.ts
from contextpull import Store, Ops

with Store.open(".contextpull/store.sqlite") as store:
    ops = Ops(store)
    print(ops.index())
    hits = ops.search("refund window", in_=["policy-2024.md", "policy-2025.md"]).hits
    for h in hits:
        print(h.id, h.heading_path, h.snippet)
    section = ops.read(hits[0].id).section

Tool definitions for any model API are in contextpull.tools.TOOLS (Anthropic shape) and openai_tools(); tools.json at the repo root is the same thing for other languages.

How it works

  1. Ingest parses Markdown, text, docx, xlsx, pptx and (with the pdf extra) PDF into headings, paragraphs, tables and code, and cuts heading-aware sections with stable ids like policy-2025.md#3. Tables and code are never split mid-block; long tables are split by rows and every part carries the header. Unchanged files are skipped on re-ingest.
  2. Store is one SQLite file with an FTS5 index whose tokenizer keeps identifiers whole (--no-cache, UV_CACHE_DIR, TX-4419, 3.12).
  3. Index is a token-budgeted table of contents, one line per document, delivered into the model's context. It goes hierarchical when a corpus is too large for the budget.
  4. Tools: index, search (ids and snippets, never bodies), read (verbatim), grep (exact matches), neighbours (the header row, the next clause).

Node

sdk/typescript/ is a store-native reader and MCP server in TypeScript over better-sqlite3: open the same store file, no Python at query time. Published to npm as contextpull.

Terminal
npx contextpull serve /path/store.sqlite                   # npm: contextpull 0.1.0
claude mcp add contextpull -- npx -y contextpull serve /path/store.sqlite

It passes the same conformance suite as the Python reference and returns identical results over MCP. Ingest stays in Python (npx contextpull ingest delegates to uvx contextpull ingest).

Go

sdk/go/ is a store-native reader and a single static binary server, pure Go, no cgo: the shape for a shared read-only deployment.

sh
cd sdk/go && go build -o contextpull-server ./cmd/contextpull-server
./contextpull-server serve /data/store.sqlite --http 0.0.0.0:8765    # or without --http for stdio

Same conformance suite, identical results to Python over MCP.

Other languages

The store file is the contract. docs/store-format.md says what a reader must do; conformance/ holds a fixture corpus, its store and expected results. An SDK in any language is done when check passes. See the SDK plan.

Docs

Start at docs/README.md: architecture, design, system design, tool reference, evaluation, roadmap, decision records.

Measured with ragbisect, which lives next door.

Read the full README →View source on GitHub →

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Frequently Asked Questions about ContextPull

We don't have a confirmed install command for ContextPull yet, so we don't publish a generated one — a guessed package name would point at the wrong package or none at all. Follow the project's own README or setup instructions (https://github.com/mi2arun/contextpull) for the current steps.

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Technical Specs & Signals

Category💻Developer Tools
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Last updatedSep 28, 2026
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28Quality signal: Emerging · 28/100How this signal is calculated ▾
Server availabilityNot measured

Not scored for repo-hosted servers — we can't reach the running server, only its GitHub page. Hosted MCP endpoints are health-checked live.

Verified ownership8/20
Documentation & tools12/30
Adoption & activity1/15
Community engagement0/10

A guidance signal from public completeness & health data — not a user rating. New listings start lower and rise as they add docs, get verified, and grow adoption. Signals we can't observe for a listing are skipped, not counted against it.

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