GL Skill
gl-skill is a standalone Python library for loading one local Skill and running one bounded
model/tool loop. Clients start a run through run() and consume ordered events plus
one terminal result; they do not resume unfinished tool turns.
An application (for example, AIP) initiates every run. GL Skill composes its Loader and Executor, while Tool Runtime is the dispatch authority for admitted capabilities. Built-in workspace operations flow through SkillWorkspaceRuntime into gl-sandbox; caller tools are separately registered host implementations. GL Skill never asks AIP to continue an unfinished tool turn.
Quick start
After installing gl-skill and setting OPENAI_API_KEY, an instruction-only local Skill needs
only its directory and a query. The default capability allowlist is empty, so this path does not
create a workspace:
import asyncio
from gl_skill import GLSkill, SkillRunResult
async def main() -> None:
result = None
async for item in GLSkill.run(skill="./skills/hello", query="Say hello."):
if isinstance(item, SkillRunResult):
if not item.succeeded:
detail = item.error.message if item.error is not None else f"status={item.status.value}"
raise RuntimeError(f"GL Skill run failed: {detail}")
result = item
assert result is not None
print(result.output_text)
if __name__ == "__main__":
asyncio.run(main())
This normal-file example requires an existing ./skills/hello/SKILL.md. From libs/gl-skill, run
the live default-model path after explicitly supplying its process-level credential prerequisite:
# Set OPENAI_API_KEY in this process through your credential manager first.
uv run python examples/hello_world.py
This command makes a paid provider request through the configured default model route. GL Skill
does not read .env; the key must already be in the process environment. The deterministic
convergence test exercises this same facade and asserts the printed greeting without making a
network request.
GLSkill.run() streams the same ordered lifecycle. Advanced callers can import GLSkillClient,
PublicRunRequest, and PublicDependencies to inject a provider-neutral model runtime, caller
capabilities, event sink, or sandbox backend explicitly. The facade never searches for .env files;
the default model path reads only the process-level OPENAI_API_KEY value.
For migration details and the typed stream contract, see
docs/migration-run-only.md.
This repository provides the independently installable provider-neutral Loader and Executor from roadmap #6138. Architecture contracts live in contracts/, with design material under docs/architecture/.
Install
The package includes the supported GLLM inference runtime, jsonschema>=4.26 for Executor schema
validation, and pyyaml>=6,<7 for the metadata seam. It does not require credentials, .env, AIP,
GL Connectors, Hermes, gl-sandbox, or workspace backends:
uv pip install dist/gl_skill-*.whl
python -c "import gl_skill"
The executor's default workspace policy is schema-complete: 100 files, 10,000,000 total bytes, 1,000,000 bytes per file, 20-second command timeout, 100,000 command-output bytes, no environment variables, and network access disabled. Unknown or malformed policy fields fail closed; network capabilities are not admitted by the MVP, and sandbox-required capabilities must be validated built-in workspace capabilities. The default install includes the public binary distribution for the GL SDK model runtime. Until this package is published, install the built wheel and its runtime dependency first:
uv pip install 'gllm-inference-binary[openai]>=0.6.130,<0.6.137' dist/gl_skill-*.whl
The runtime's import surface remains gllm_inference. Imports stay lazy for callers that inject a
custom ModelRuntimeProtocol, but the supported default dependency is installed with gl-skill.
The binary runtime currently publishes wheels for CPython 3.11–3.13 on Linux
manylinux_2_31_x86_64, Windows win_amd64, and macOS macosx_13_0_arm64.
Support follows the selected GLLM binary release; other platforms cannot use the
default install until a compatible distribution is published or the package is
split into a provider-neutral core.
Release validation records the resolved dependency graph and installed footprint for each runtime pin; this is intentionally not a fixed value in the user guide.
Inputs and configuration
GL Skill reads no .env file implicitly and performs no environment discovery beyond the documented
default-model path. Compose these inputs explicitly:
- Skill source: an absolute local
file:///<skills-root>URI plus a containment-safe single directory-componentskill_ref. The referenced directory must contain a regularSKILL.md. - Request: caller identity, correlation ID, query, stable allowed capability IDs, model ID, run limits, and workspace policy.
- Dependencies: a Skill provider, an optional custom model runtime, an optional
SandboxBackend, registered caller tools, and an optional event sink. If no model is injected,OPENAI_API_KEYmust already be present in the process environment and the installed GLLM runtime supplies the default. - Workspace: an explicit backend object is required before built-in
workspace.*capabilities can be admitted. There is no automatic sandbox selection or credential discovery.
Advanced explicit composition
This first example creates one temporary local Skill and runs it with a scripted model. It has no network access and requires only the core development environment:
cd libs/gl-skill
make setup
uv run python examples/quickstart_run.py
Expected terminal summary:
status=succeeded output='The note was saved.'
The complete deterministic source is
examples/quickstart_run.py. The installed-wheel
convergence gate executes that canonical file on Linux and Windows. Replace its
scripted model with a real model adapter when your application owns that
dependency.
A successful result contains one authoritative terminal status, final text, typed receipts, evidence, and usage. Its wire shape is frozen by gl_skill/contracts/schemas/skill-run-result.schema.json; examples live beside it in contracts/examples/.
Streaming
Use client.run(request) when the initiating application wants ordered progress. When consumed to
completion, it yields events and then exactly one SkillRunResult:
from gl_skill import SkillRunResult
async for item in client.run(request):
if isinstance(item, SkillRunResult):
print(f"result={item.status.value}")
else:
print(f"event={item.type} sequence={item.sequence} terminal={item.terminal}")
Closing the stream early ends observation and runs bounded cleanup, but does not deliver a normalized
cancelled terminal item to the detached consumer. Use contextlib.aclosing() (or explicitly await
stream.aclose()) when breaking early so cleanup is prompt:
from contextlib import aclosing
from gl_skill import SkillRunResult
async with aclosing(client.run(request)) as stream:
async for item in stream:
if should_stop_observing(item):
break
if isinstance(item, SkillRunResult):
print(item.status.value)
Cancelling the consumer task instead runs cleanup and propagates asyncio.CancelledError, with no
terminal-delivery guarantee. To receive a cancelled terminal event and SkillRunResult, pass an
asyncio.Event as cancellation_token to GLSkillClient.run() and remain attached through the final
item.
The runnable version also uses the same temporary Skill and scripted model:
uv run python examples/streaming_run.py
Tools, resources, policy, and events
Stable capability IDs and model-visible names
Admission uses stable versioned IDs such as workspace.read@1 and caller.echo@1. Model-visible
names such as workspace_read and caller_echo exist only in schemas projected to the model. Do not
persist model-visible names as authorization identities.
Caller tools
Caller handlers are trusted host callbacks registered by the application. They execute in the host process and do not inherit the gl-sandbox guarantee. Validate inputs at their boundary and give them truthful effects metadata:
uv run python examples/caller_tool.py
See examples/caller_tool.py for complete input/output JSON Schemas, effects, handler registration, receipt inspection, and expected offline output.
Sandboxed workspace operations
Four built-in capabilities are available when an explicit backend is supplied:
| Stable capability ID | Model-visible name | Operation |
|---|---|---|
workspace.list@1 |
workspace_list |
List staged files |
workspace.read@1 |
workspace_read |
Read bounded file content |
workspace.write@1 |
workspace_write |
Write bounded bytes |
workspace.execute_command@1 |
workspace_execute_command |
Execute exact argv in sandbox |
The Loader scans regular resource files into an immutable manifest with sizes and SHA-256 hashes.
Sandbox creation is lazy: no backend is created until the Executor needs the workspace. On first use,
SkillWorkspaceRuntime stages manifest resources, verifies hashes through the sandbox command channel,
and applies the caller-supplied WorkspacePolicy (file count/size limits, command timeout/output
limits, empty-by-default environment allowlist, and disabled network access). Commands receive exact
argv vectors—not shell strings—and results include exit status, bounded stdout/stderr, timing, and
truncation state.
If a caller allows workspace.* without providing a backend, the run fails closed with
policy_denied and code workspace_unavailable. The deterministic demonstration in
examples/workspace_demo.py uses an in-memory backend so it can run
offline; it is not a production sandbox substitute. Production callers inject a real
SandboxBackend and normally construct its transport from gl-sandbox public primitives.
Events, receipts, cancellation, and retries
Tool Runtime performs whole-batch admission preflight before dispatch. Every dispatched call emits
correlated gl_skill.tool_call and gl_skill.tool_result events and produces a typed receipt. A
failed call produces a failed receipt; GL Skill does not automatically retry it. Terminal events are
couples to statuses: final_response means succeeded, cancelled means cancelled, and
error carries other failure statuses.
Pass asyncio.Event for cooperative deadline cancellation:
cancellation_token = asyncio.Event()
cancellation_token.set()
async for item in client.run(request, cancellation_token=cancellation_token):
if isinstance(item, SkillRunResult):
assert item.status.value == "cancelled"
Limits on turns, tool calls, wall-clock time, and output size are set by RunLimits; workspace
resource/command bounds are separate in WorkspacePolicy.
Deferred integrations
Deep Agents, remote lifecycle management, and bidirectional synchronization are deferred. AIP/GL Connectors may initiate runs or supply external integrations, but Skill scripts and commands execute only inside gl-sandbox.
The internal GLLM boundary is documented separately in runtime adapters; it is never loaded by the core import surface.
Optional workspace runtime
GL Skill never selects a sandbox provider or reads provider credentials. The application chooses
and configures its supported gl-sandbox backend, then passes a factory that returns its
provider-neutral SandboxBackend. lazy_workspace_tool_runtime() stores that factory without
constructing a backend or importing gl_sandbox; the first executor-admitted workspace call
initializes both exactly once. An instruction-only run, or a run with caller tools only, stays
sandbox-free.
Callers consume the public GLSkillClient.run() stream; the executor does not
expose a separate one-shot lifecycle.
The executor supplies an immutable ToolContext for every admitted call. Its request ID,
remaining deadline, cancellation view, and complete workspace_policy are authoritative; unknown
policy fields, invalid bounds, network access, and implicit environment inheritance fail closed.
The default environment allowlist is empty. The workspace layer passes only exact argv vectors to
the two public gl-sandbox primitives—no shell, provider-private helper, GNU command, or glob
expansion is required.
Lifecycle ownership is deliberately singular. Normal completion is terminated by executor cleanup. If a public primitive is cancelled or its outer deadline expires, that primitive terminates its own sandbox and the workspace runtime only discards the handle; executor cleanup then becomes a no-op. This prevents a second termination of the same backend.
Development
Open-format naming, metadata, provider reuse, and runtime-ownership decisions are documented in Agent Skills format compatibility.
make setup
make check
make check runs formatting/lint checks, strict typing, unit tests, the bare-import footprint gate,
and wheel construction. It uses the locked development environment; resolving or populating that
environment may require access to the configured package index. Once dependencies and the build
backend are available, the package tests and footprint probe are deterministic and offline.
Dependency-footprint gate
scripts/check_dependency_footprint.py verifies that the wheel contains both gl_skill and
gl_skill/py.typed; that its base runtime dependencies include GLLM, jsonschema, and pyyaml; that a
clean wheel-only environment can import gl_skill; and that doing so loads none of these forbidden
top-level modules:
aip_agents,aip_sdk,glaip_sdkgl_connectorshermesgllm_core,gllm_inferencegl_sandbox,e2b_code_interpreter,opensandbox,boto3,aioboto3openai,anthropic,google.genai,google.generativeaicohere,groq,litellm,mistralai,ollama,vertexaiskills_ref(development-only format oracle)
The gate also records that no optional GLLM extra is required in the built metadata. Future optional surfaces must extend this evidence with their declared dependency graph instead of relying on an unmeasured “runtime-free” label.
Examples index
| Example | Purpose |
|---|---|
hello_world.py |
Canonical low-code GLSkill.run() call |
quickstart_run.py |
Deterministic explicit-composition run() call |
streaming_run.py |
Ordered events followed by one terminal result |
caller_tool.py |
Register a trusted callback and inspect its receipt |
workspace_demo.py |
Deterministic sandbox-policy demonstration using an in-memory backend |
live_model/openai_smoke.py |
Explicitly credential-gated real-model smoke test |
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File details
Details for the file gl_skill_binary-0.0.4-cp311-cp311-macosx_13_0_arm64.whl.
File metadata
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- Upload date:
- Size: 928.6 kB
- Tags: CPython 3.11, macOS 13.0+ ARM64
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Provenance
The following attestation bundles were made for gl_skill_binary-0.0.4-cp311-cp311-macosx_13_0_arm64.whl:
Publisher:
build-binary.yml on GDP-ADMIN/gl-sdk
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Statement:
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https://in-toto.io/Statement/v1 -
Predicate type:
https://docs.pypi.org/attestations/publish/v1 -
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gl_skill_binary-0.0.4-cp311-cp311-macosx_13_0_arm64.whl -
Subject digest:
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Permalink:
GDP-ADMIN/gl-sdk@4f52c5278b736a51d00fe1eb813bf78d8d5c53df -
Branch / Tag:
refs/tags/gl_skill-v0.0.4 - Owner: https://github.com/GDP-ADMIN
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private
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Token Issuer:
https://token.actions.githubusercontent.com -
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github-hosted -
Publication workflow:
build-binary.yml@4f52c5278b736a51d00fe1eb813bf78d8d5c53df -
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