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agentmint-hermes-runner

Python adapter that bridges Hermes' delegate_task(background=True) to named, persistent AgentMint subagents — specialists that accumulate /workspace/MEMORY.md across calls.

One install path: monkey-patch delegate_task so every async delegation can route to AgentMint. The LLM picks the target subagent via either default_agent_name (set at install) or by including "agentmint-<name>" in the toolsets list (per-call routing).

The Hermes-installable skill that drives this adapter lives in a separate catalog repo: mesutcelik/agentmint-skillshermes skills install mesutcelik/agentmint-skills/hermes-delegate-task. The skill references this package by its PyPI name (pip install agentmint-hermes-runner).

Status

v0.12.0 — alpha. Auth backends: BearerAuth (any rail — Stripe-Link / x402 / Tempo MPP), TempoAuth (Tempo USDC.e — Tier 1 direct only; the delegate_task patches require Bearer).

Breaking change in 0.12.0: dropped the agentmint-hermes-init CLI. Operators bootstrap a JWT via agentmint.store/SKILL.md (any rail), then either set $AGENTMINT_JWT in Hermes' env OR write the JWT into ~/.agentmint/credentials.json. The autoload entry-point reads from either source at Hermes boot.

Routing model

Opt-in only. The patched delegate_task:

  • LLM includes "agentmint-<name>" in the toolsets list → routes to that AgentMint subagent
  • LLM does NOT include the directive → falls through to Hermes-native delegate_task unchanged

There is no catch-all default. AgentMint is never selected transparently — the LLM has to consciously opt in by emitting the toolsets directive. Install the hermes-delegate-task skill so the LLM knows the convention.

If you want a catch-all for a specific deployment, set $AGENTMINT_DEFAULT_AGENT_NAME in Hermes' env before boot — explicit override only.

Setup

# 1. Install the runner
pip install agentmint-hermes-runner

# 2. Bootstrap a JWT via the AgentMint API — pick a rail, topup ≥ $1.
#    See https://agentmint.store/SKILL.md for the per-rail curl/CLI flow.
#    Then put the resulting JWT somewhere the autoload can find it:
export AGENTMINT_JWT=<the access_token>
#    OR write it to ~/.agentmint/credentials.json (shape below).

# 3. Install the routing-convention skill so the LLM knows the
#    `toolsets=["agentmint-<name>"]` directive exists.
hermes skills install mesutcelik/agentmint-skills/hermes-delegate-task

# 4. Restart Hermes
#    The autoload entry-point fires, reads $AGENTMINT_JWT (or the
#    credentials cache), and auto-wires `delegate_task` in opt-in mode.

If you prefer the file cache over an env var (e.g. so the JWT survives shell restarts), ~/.agentmint/credentials.json has this shape — same as what the agentmint CLI / link-cli flows produce:

{
  "tokens": {
    "link_stripe:cus_…": {
      "access_token": "eyJhbGciOiJI…",
      "saved_at": 1782152633
    }
  }
}

Permissions: 0700 on the directory, 0600 on the file. The autoload picks the first token in the map; set AGENTMINT_JWT explicitly to disambiguate if multiple principals are cached.

Then mint subagents per use case (one curl per specialist). For example, a code-review specialist:

JWT=$(jq -r '.tokens | to_entries[0].value.access_token' ~/.agentmint/credentials.json)
curl -X POST https://api.agentmint.store/a2a \
  -H "Authorization: Bearer $JWT" -H 'Content-Type: application/json' \
  -d '{"jsonrpc":"2.0","id":1,"method":"agent.create","params":{
    "name":"pr-reviewer",
    "mode":"all-inclusive",
    "persona":"You review GitHub PRs. Follow the pr-review skill exactly.",
    "skills":["mesutcelik/agentmint-skills/pr-review"]
  }}'

After that, the Hermes LLM can dispatch to it:

delegate_task(
    background=True,
    goal="Review PR 42 in owner/repo",
    toolsets=["terminal", "file", "agentmint-pr-reviewer"],
)

If you'd rather wire the adapter by hand (e.g. injecting the JWT from a secret manager, not a file on disk), the lower-level API still works:

import os
from agentmint_hermes_runner import AgentMintDispatcher, BearerAuth, install_delegate_task_wrapper

dispatcher = AgentMintDispatcher(auth=BearerAuth(jwt=os.environ["AGENTMINT_JWT"]))
install_delegate_task_wrapper(dispatcher, default_agent_name=None)

The autoload entry-point becomes a no-op if AGENTMINT_JWT is unset AND ~/.agentmint/credentials.json is absent — safe to leave installed even in setups that bring their own wiring.

Setup — per-call specialist routing

The LLM picks the target specialist on each call via the toolsets list:

# Operator setup is identical — generic default + LLM-driven overrides.
install_delegate_task_wrapper(dispatcher, default_agent_name="general-worker")

# The LLM then dispatches like this:
delegate_task(
    background=True,
    goal="Review PR 42 in mesutcelik/agentmint-mono",
    toolsets=["terminal", "file", "agentmint-pr-reviewer"],
)

The adapter parses agentmint-pr-reviewer from toolsets, routes that call to that subagent (overriding default_agent_name), and strips the entry from the toolset list before composing the prompt the subagent receives.

This is a workaround for Hermes' delegate_task not accepting a dispatcher-target argument. A formal proposal is in docs/hermes-feature-request.md — when an upstream extension lands, this hack will be deprecated in favor of a first-class dispatcher or metadata parameter.

Pattern discipline

  • default_agent_name → generic worker only (general-worker, default-worker, etc.)
  • Specialists → only via toolsets=["agentmint-<name>"]
  • Never name a specialist as the default. Specialists scale; defaults are catch-all.

See examples/persistent.py for a complete operator setup snippet.

Install

pip install agentmint-hermes-runner

Test

pip install -e ".[dev]"
pytest
ruff check .

Lower-level surface

If you want to drive AgentMint directly without the delegate_task patch:

result = dispatcher.dispatch(
    agent_name="reviewer-myrepo",
    goal="Review the diff at /workspace/pr-42.diff and flag risks.",
    context="Project at /workspace, Python 3.11, uses Flask + PyJWT.",
    toolsets=["terminal", "file"],     # "web" raises UnsupportedToolset
    role="leaf",                        # or "orchestrator"
    max_iterations=50,
    child_timeout_seconds=600,
    workspace_files=[                   # ship inputs into the sandbox before the run
        {"path": "/workspace/pr-42.diff", "content": "diff --git a/foo ..."},
    ],
    cleanup_paths=["/workspace/pr-42.diff"],  # wipe them after the run
)

# Batch dispatch (Hermes tasks=[…] analog):
results = dispatcher.dispatch_batch(
    tasks=[
        Task(agent_name="researcher-wasm", goal="WASM 2026 survey"),
        Task(agent_name="researcher-riscv", goal="RISC-V 2026 survey"),
    ],
    max_concurrent_children=3,
    child_timeout_seconds=900,
)

Known unsupported

  • toolsets=["web"] — no canonical AgentMint web-fetch skill yet. Raises UnsupportedToolset.
  • max_spawn_depth — AgentMint sandboxes aren't structurally bounded by depth.
  • Tempo + the delegate_task patches — polling against agent.run.status is Bearer-only. Tempo customers can use Tier 1 (direct curl) but not the install/plugin paths above.

License

MIT

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