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Pre-release

This release is a pre-release and may not be stable for production use.

Atlas Guardrails

Atlas Guardrails provides monitoring, observability, and guardrails for Large Language Model interactions. Track, validate, and secure your LLM API calls with minimal — often zero — changes to your existing application code.

  • Observers wrap your LLM client so traffic is monitored automatically, no call-site changes.
  • Guardrails give you explicit guard/observe calls when you want fine-grained control.
  • Blocking mode can enforce policy (rewrite or block non-compliant requests/responses).
  • Traceability correlates inputs and outputs and records processing traces.

Installation

# SDK only
pip install atlas-guardrails

# SDK + the OpenAI client observer
pip install "atlas-guardrails[openai-observers]"

# Pre-release (alpha) build from the develop branch
pip install --pre atlas-guardrails

atlas-guardrails automatically pulls in its companion package atlas-guardrails-core at the same version; both share the atlas_guardrails import namespace.

Editable / development install
git clone git@github.com:Varonis-Systems/Atlas-alltrue-llm-observability.git
cd Atlas-alltrue-llm-observability

# Using uv (recommended — installs the workspace + dev dependencies)
uv sync --extra openai-observers

# Or using pip
pip install -e ".[openai-observers]"

Quickstart

Set your credentials (created in the Atlas application):

export ALLTRUE_API_KEY="<your-api-key>"
export ALLTRUE_ENDPOINT_IDENTIFIER="<your-endpoint-identifier>"

Then monitor every OpenAI chat completion with no changes to your call sites:

import os
from openai import OpenAI
from atlas_guardrails.observers.openai import OpenAIObserver

observer = OpenAIObserver(
    alltrue_api_key=os.environ["ALLTRUE_API_KEY"],
    alltrue_endpoint_identifier=os.environ["ALLTRUE_ENDPOINT_IDENTIFIER"],
    blocking=False,  # monitor only; set True to enforce policy
)
observer.register()

# Your existing code — now observed automatically.
completion = OpenAI().chat.completions.create(
    model="gpt-4o",
    messages=[{"role": "user", "content": "What day is today?"}],
)
print(completion.choices[0].message.content)

observer.unregister()

Prefer explicit validation instead of patching the client? Use ChatGuardrails:

from atlas_guardrails.guardrails.chat import ChatGuardrails, GuardrailsException

guardrails = ChatGuardrails(
    alltrue_api_key=os.environ["ALLTRUE_API_KEY"],
    alltrue_endpoint_identifier=os.environ["ALLTRUE_ENDPOINT_IDENTIFIER"],
)

try:
    guarded = await guardrails.guard_input(["What day is today?"])
except GuardrailsException as exc:
    print(f"Input blocked: {exc}")

Configuration essentials

Setting Constructor arg Env var Required
API key alltrue_api_key ALLTRUE_API_KEY Yes
Endpoint identifier alltrue_endpoint_identifier ALLTRUE_ENDPOINT_IDENTIFIER Yes
API base URL alltrue_api_url ALLTRUE_API_URL No (defaults to the Atlas production endpoint)

Constructor arguments win over environment variables, and a .env file in the working directory is loaded automatically. See the full configuration reference for every option (logging, blocking, batching, timeouts, control directives).

Documentation

  • docs/USAGE.md — full usage guide: observers, guardrails, blocking vs non-blocking, batch mode, control directives, traceability, and troubleshooting.
  • docs/RELEASING.md — versioning, branching model, and CI/CD.

Features

  • Zero-touch observers for the OpenAI client (sync and async).
  • Explicit guardrails for custom pipelines and non-OpenAI flows.
  • Blocking mode to validate and, if needed, rewrite or block requests/responses.
  • Require-approval (HOLD) flow for human-in-the-loop policies.
  • Traceability via a chat_id plus retrievable processing traces.
  • Batch mode to reduce request volume when monitoring.
  • Async and sync support.

Releasing

atlas-guardrails and atlas-guardrails-core are versioned and published together. Pushes to develop produce alpha pre-releases (pip install --pre atlas-guardrails); the develop → main PR cuts the final release. See docs/RELEASING.md for the full branching model, conventional-commit rules, and CI/CD setup.

License

This project is licensed under the Apache License 2.0. See the LICENSE file for details.

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