Python SDK for Kestrel Workflows
Project description
Kestrel SDK
Python SDK for Kestrel — AI Agents for Platform Engineering.
Build, deploy, and manage workflows programmatically with a typed, fluent API.
Installation
pip install kestrel-workflows
Quick Start
from kestrel import KestrelClient
from kestrel.workflows import Workflow, Trigger, Action
client = KestrelClient(api_key="kestrel_sk_...")
wf = (
Workflow("Pod Crash RCA + Jira")
.description("Run RCA on pod crash, create Jira ticket")
.trigger(
Trigger.k8s_pod_status()
.reasons("CrashLoopBackOff")
.namespace("production")
)
.cooldown(hours=24)
.then(Action.kestrel_trigger_rca().label("Run RCA"))
.then(Action.jira_create_ticket()
.project("KAN")
.title("{{incident.title}}")
.priority("High")
)
)
created = client.workflows.deploy(wf, activate=True)
print(f"Deployed: {created.id}")
Async Support
from kestrel import AsyncKestrelClient
async with AsyncKestrelClient(api_key="kestrel_sk_...") as client:
workflows = await client.workflows.list()
execution = await client.workflows.test(workflows[0].id)
result = await client.executions.wait(execution.id)
print(f"Result: {result.status}")
Integrations
Connect, test, and disconnect Kestrel integrations programmatically.
API keys need the integrations:read / integrations:manage scopes.
# See every integration and its connection status
for status in client.integrations.list():
print(status.id, status.connected)
# Inspect credential requirements per integration
for spec in client.integrations.specs():
print(spec.key, spec.kind, [f.name for f in spec.fields])
# Setup instructions: where to create each credential (mirrors the
# platform UI and `kestrel integrations connect <name> --help`)
print(client.integrations.setup_help("cloudflare"))
# Token integrations take credential kwargs
client.integrations.connect("cloudflare", api_token="...", account_id="...")
client.integrations.connect("pagerduty", api_token="...", webhook_secret="...")
# Follow-up steps after connecting (e.g. webhook setup), if any
print(client.integrations.post_connect_hint("cloudflare"))
# Save a vendor-generated webhook signing secret after connect
# (Vercel, Railway, PlanetScale, Supabase) — keeps the stored API token
client.integrations.set_webhook_secret("vercel", "whsec_...")
# Knowledge sources
client.integrations.connect(
"confluence",
base_url="https://acme.atlassian.net",
api_key="me@acme.com", # Atlassian account email
api_token="...",
)
# OAuth integrations return a URL to open in the browser
url = client.integrations.connect("github")
# Verify and clean up
client.integrations.test("cloudflare")
client.integrations.disconnect("cloudflare")
Kubernetes, AWS, and OCI use multi-step flows — connect those with the
Kestrel CLI (kestrel integrations connect <name> --help).
Authentication
Create an API key in the Kestrel platform under Workflows > API Keys.
# API key (recommended)
client = KestrelClient(api_key="kestrel_sk_...")
# From CLI login
client = KestrelClient.from_config()
# Async
client = AsyncKestrelClient(api_key="kestrel_sk_...")
Documentation
Full SDK documentation: docs.usekestrel.ai/workflows/sdk
License
Apache 2.0
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