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maf-sandbox

Experimental. This package is early-stage (0.1.0, Development Status :: 4 - Beta) — its API may change or be removed in a future release without notice. Importing it emits a one-time MafSandboxExperimentalWarning; suppress it with warnings.filterwarnings("ignore", category=maf_sandbox.MafSandboxExperimentalWarning) once you've read the notice.

This package is not affiliated with, endorsed by, or a product of Microsoft — it is a third-party reference implementation of microsoft/agent-framework#7568, written for use with Microsoft Agent Framework but with no dependency on it in its protocol layer.

Quickstart

pip install maf-sandbox
from maf_sandbox import Isolation, SandboxKey, SandboxRouter, SandboxSpec, WorkspaceContext

# Implement SandboxBackend against your own provider — or install maf-sandbox-aca for a
# ready-made Azure Container Apps Sandboxes backend — then wire it into a router:
router = SandboxRouter([my_backend], deployed=False)
sandbox = await router.acquire(SandboxKey(scope="tenant-1", thread_id="t-1", agent_dir="devops"), SandboxSpec(kind="bicep", image="bicep-sandbox:0.46.1", egress_allow=("mcr.microsoft.com",), work_dir="/workspace"))

samples/01_acas_bicep is that wiring as a runnable program, including the part no snippet shows well: building the WorkspaceContext out of callables rather than values, which is what keeps a SandboxKey a property of the host's request.

Threat model

This package draws no isolation boundary itself — it is protocol and policy over whatever a SandboxBackend implementation actually provides. Isolation states three tiers a backend can declare, from strongest to weakest: vm (a VM boundary — the whole guest, not just a process, is untrusted), container (a shared-kernel boundary), and process (no boundary beyond the OS's own process isolation). SandboxRouter enforces the one rule below on top of that declaration; the package's job is to make an unsafe backend selection fail loudly at construction, not silently at first use. Beyond backend selection, this layer has nothing else to get wrong: it holds no credentials, executes nothing, and reaches no network — everything security-relevant about a specific sandbox lives in the backend that implements it.

The vocabulary

SandboxKey (scope, thread_id, agent_dir) — the one sandbox a caller may reach
SandboxSpec what a sandbox of a given kind needs: image, egress allowlist, work dir
Sandbox write_file + exec — all a workload gets
SandboxBackend acquire / dispose / dispose_scope
SandboxRouter picks the backend, enforces the deployed rule
SandboxPurger duck-typed purge_scoped_thread(scope, thread_id) for a host's delete path

SandboxKey's scope and thread come from the host's request context through WorkspaceContext, whose fields are callables read at call time rather than values. That is deliberate: a key a caller can supply is a key a model can supply, and that would let one conversation address another's sandbox.

SandboxSpec.egress_allow is an allowlist — everything not named is denied, so an empty tuple means no network. Stating it positively means a spec that forgets to mention egress gets the closed configuration rather than the open one.

The one rule that is not a convenience

DEPLOYED_ISOLATION = frozenset({Isolation.VM})

A backend declares its own isolation (vm / container / process). When the host reports it is running deployed, the router refuses to select anything weaker than a VM boundary — raising SandboxBackendNotPermitted at construction, not at first use, so a misconfigured deployment cannot start with the feature apparently enabled and quietly unsafe.

It refuses rather than degrades. Falling back to a stronger backend would hide a misconfiguration; proceeding with the weaker one would break claims the host's security posture makes about every execution surface. Neither is better than an error.

A hardened container runtime (gVisor, Kata, Firecracker) is deliberately not in the permitted set. Admitting one is a decision for whoever owns those posture claims, taken there first.

Writing a backend

Implement name, isolation, acquire, dispose, dispose_scope. Two things worth knowing before you start:

acquire is get-or-create. A workload's fix-round loop calls it every iteration; returning a cold sandbox each time turns a seconds-long loop into a minutes-long one.

dispose_scope must not consult only your process's memory. A multi-replica host serves a conversation delete wherever it lands, so the replica that created the sandbox is usually not the one deleting it. Derive the set from the service — labels, a listing, whatever your provider offers. A backend that skips this leaves billable compute running and the bug is invisible on a single-replica dev box.

Both dispose methods are best-effort by contract: purge must never fail a delete.

Provenance

Extracted from a production agent application, where this seam was written for its first execution surface: a tool that compiles agent-authored infrastructure code in a sandbox. The deployed-isolation rule above is not a preference — it is what a security review concluded when it worked through what a shared-kernel boundary does not close for code an agent wrote.


Maintained by SOKOLAI BV.

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