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  3. Gather
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Gather

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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Attestable memory for AI agents: curated writes, verifiable tenant isolation, bi-temporal facts.

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 gather, 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.
Install Directory Badge Claim listing Alternatives🧠 More in Knowledge & Memory

Documentation Overview

Gather

Deterministic, attestable memory for AI coding agents.

License Stars CI Website

Get started · Console · How it works · Compare


This repo is the open integration surface for Gather, a multi-tenant org-memory service (an MCP server plus a REST API) with server-enforced tenant isolation and attestable, curated writes. The memory engine is a hosted service; this repo holds the client integrations (starting with the Claude Code plugin) so your harnesses use that memory automatically, instead of hoping the model remembers to.

What's here

PathWhat
integrations/claude-codeThe gather plugin: hooks + bundled MCP server + curation skills
cli/The hunta CLI: gather, recall, verify, instinct (and the SDK-seed client)
verify/@hunta/verify: offline Ed25519 verification of isolation-attestation receipts (verify, don't trust)
examples/Drop-in config (raw mcpServers block for any MCP client)
docs/Plugin reference: data flow, staging model, cost, metrics, troubleshooting

More integrations (Codex, Agent SDK) land here over time.

Quickstart (Claude Code)

Two lines, then a token:

Code
/plugin marketplace add hunta-ai/gather
/plugin install gather@hunta

Mint an agent key in the console (scoped to propose + recall, never to write canon), then point the plugin at your tenant:

server.ts
export GATHER_URL=https://mcp.hunta.ai   # or your own deployment on Estate (self-host)
export GATHER_TOKEN=<your-agent-key>

Recall and capture are live on your next session. Full walkthrough: hunta.ai/get-started.

Using another client (raw MCP)

Not on Claude Code, or prefer raw MCP? Point any MCP client at the server directly (see examples/mcp-config.json):

config.json
{
  "mcpServers": {
    "gather": {
      "url": "https://mcp.hunta.ai/mcp",
      "headers": { "Authorization": "Bearer <your-agent-key>" }
    }
  }
}

What the plugin does

  • Auto-recall on every prompt. A UserPromptSubmit hook queries your memory and injects the top facts into the turn, so the agent starts with what it already knows.
  • Re-inject after compaction. A SessionStart(compact) hook re-runs recall so injected context survives Claude Code's context resets.
  • Loss-proof capture. PreCompact and SessionEnd hooks post a content-free breadcrumb to your staging inbox. The transcript is never uploaded.
  • Curation skills. /gather:flush reviews pending candidates; /gather:status shows local recall hit-rate and latency.

The principle is harness-enforced invocation: tool availability is not tool use. Agents do not reliably recall context or write learnings back on their own, so the hooks make it happen by construction, on every turn, without depending on the model's judgement.

How memory works

Gather's differentiator is the write path: the writer never decides.

  1. Capture lands candidates in a staging inbox. Candidates are invisible to recall.
  2. Promotion runs the curated-write pipeline (extraction, dedup, bi-temporal supersession, provenance stamping). This is the only path into canon, and it is a human (or policy) decision.
  3. Recall returns only sealed, attributable facts. An injected agent can propose noise; it can never seal a fact.

Always-on capture means you never lose a learning to a closed session; the staging wall means an unreviewed breadcrumb can never pollute the memory your agents read. Read more: the curation gate.

Fail-open by construction

A slow or unreachable memory server never blocks or degrades a turn.

  • 8-second hook timeout.
  • Every error path (timeout, 4xx/5xx, missing token, network failure) exits 0 with no output: inject nothing, continue.
  • Automatic capture only ever adds candidates to staging, so canon is never touched on any error path.

Worst case for a down server is a turn with no injected context, never a stalled turn.

Privacy

Everything goes only to the GATHER_URL you configure. Recall sends the prompt text as a search query; capture sends a breadcrumb (event, cwd, session id, timestamp) and never the transcript. On the hosted service that endpoint is mcp.hunta.ai; on Estate it is your own deployment and nothing leaves your infrastructure. Full data-flow table: docs/plugin.md.

Why Gather

GatherTypical memory API
Write pathCurated: proposals reviewed before they enter canonDirect writes
IsolationPer-tenant crypto + RLS, with a signed proof you can run yourselfClaimed
TimeBi-temporal (what was true, and when you learned it)Last-write-wins

Honest comparisons, including where we're behind: hunta.ai/compare.

Community & support

  • Issues and feature requests: GitHub Issues
  • Security reports: see SECURITY.md
  • Questions: hunta@agentmail.to

Contributing

Integrations and fixes welcome. See CONTRIBUTING.md and our Code of Conduct.

License

Apache-2.0.

Read the full README →View source on GitHub →

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Reviews

No reviews yet — be the first to share how this listing worked for you.

Frequently Asked Questions about Gather

We don't have a confirmed install command for gather 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/hunta-ai/gather) for the current steps.

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Technical Specs & Signals

Category🧠Knowledge & Memory
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Last updatedSep 28, 2026
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27Quality signal: Emerging · 27/100How this signal is calculated ▾
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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 & tools11/30
Adoption & activity1/15
Community engagement0/10

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