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Python Background Jobs

Free

Efficiently manage long-running tasks in Python.

by wshobson38.7k stars on wshobson/agents
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Updated Jul 18, 2026
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Free · Opens the source repo

What Python Background Jobs does

The Python Background Jobs skill provides essential patterns for implementing asynchronous task processing in Python applications. It allows developers to decouple long-running or unreliable tasks from the immediate request/response cycle, enabling a more responsive user experience. By utilizing task queues, workers can handle heavy lifting in the background, allowing the main application to return results quickly. This skill is particularly useful for tasks that may take longer than a few seconds, such as sending emails, generating reports, or processing uploads.

Core concepts include the Task Queue Pattern, which allows an API to accept requests and enqueue jobs for asynchronous processing. The skill emphasizes the importance of idempotency, ensuring that tasks can be retried safely in case of failures. Additionally, it introduces a Job State Machine to track the lifecycle of jobs, transitioning through states such as pending, running, succeeded, and failed. This structured approach aids in managing job states effectively, providing visibility and debugging capabilities for developers.

The skill also highlights the use of Celery as a primary example for task management, while acknowledging alternative solutions like RQ and cloud-native options. With practical code snippets and clear explanations, developers can quickly grasp the implementation of background jobs and task queues in their projects. This skill is tailored for Python developers looking to enhance their applications with robust asynchronous processing capabilities.

When to use it

Use this skill when you need to handle tasks that require significant processing time, such as sending notifications or generating reports.

When not to use it

This skill may not be suitable for real-time processing needs where immediate feedback is essential, as it focuses on asynchronous task handling.

What you can build with it

Sending Welcome Emails

Use this skill to send welcome emails asynchronously after user registration, improving response times.

Generating Reports

Implement background processing for generating complex reports, allowing users to continue using the application without delay.

Processing Media Uploads

Handle media transformations in the background, ensuring that users can upload files without waiting for processing to complete.

How to install Python Background Jobs

View source

1. Install with the skills CLI

npx skills add wshobson/agents/python-background-jobs --agent claude-code

2. Or install it manually

Download the skill folder and drop it into ~/.claude/skills/ for all projects, or .claude/skills/ to scope it to one repo. Restart Claude Code so it picks up the new skill.

Anthropic's agentic coding CLI, and the reference implementation of Agent Skills. Drop a skill folder into ~/.claude/skills and Claude Code loads it automatically whenever a task matches the skill's description. Claude Code docs

Inside SKILL.md

Written by wshobson

Python Background Jobs & Task Queues

Decouple long-running or unreliable work from request/response cycles. Return immediately to the user while background workers handle the heavy lifting asynchronously.

When to Use This Skill

  • Processing tasks that take longer than a few seconds
  • Sending emails, notifications, or webhooks
  • Generating reports or exporting data
  • Processing uploads or media transformations
  • Integrating with unreliable external services
  • Building event-driven architectures

Core Concepts

1. Task Queue Pattern

API accepts request, enqueues a job, returns immediately with a job ID. Workers process jobs asynchronously.

2. Idempotency

Tasks may be retried on failure. Design for safe re-execution.

3. Job State Machine

Jobs transition through states: pending → running → succeeded/failed.

4. At-Least-Once Delivery

Most queues guarantee at-least-once delivery. Your code must handle duplicates.

Quick Start

This skill uses Celery for examples, a widely adopted task queue. Alternatives like RQ, Dramatiq, and cloud-native solutions (AWS SQS, GCP Tasks) are equally valid choices.

from celery import Celery

app = Celery("tasks", broker="redis://localhost:6379")

@app.task
def send_email(to: str, subject: str, body: str) -> None:
    # This runs in a background worker
    email_client.send(to, subject, body)

# In your API handler
send_email.delay("user@example.com", "Welcome!", "Thanks for signing up")

Fundamental Patterns

Pattern 1: Return Job ID Immediately

For operations exceeding a few seconds, return a job ID and process asynchronously.

from uuid import uuid4
from dataclasses import dataclass
from enum import Enum
from datetime import datetime

class JobStatus(Enum):
    PENDING = "pending"
    RUNNING = "running"
    SUCCEEDED = "succeeded"
    FAILED = "failed"

@dataclass
class Job:
    id: str
    status: JobStatus
    created_at: datetime
    started_at: datetime | None = None
    completed_at: datetime | None = None
    result: dict | None = None
    error: str | None = None

# API endpoint
async def start_export(request: ExportRequest) -> JobResponse:
    """Start export job and return job ID."""
    job_id = str(uuid4())

    # Persist job record
    await jobs_repo.create(Job(
        id=job_id,
        status=JobStatus.PENDING,
        created_at=datetime.utcnow(),
    ))

    # Enqueue task for background processing
    await task_queue.enqueue(
        "export_data",
        job_id=job_id,
        params=request.model_dump(),
    )

    # Return immediately with job ID
    return JobResponse(
        job_id=job_id,
        status="pending",
        poll_url=f"/jobs/{job_id}",
    )

Pattern 2: Celery Task Configuration

Configure Celery tasks with proper retry and timeout settings.

from celery import Celery

app = Celery("tasks", broker="redis://localhost:6379")

# Global configuration
app.conf.update(
    task_time_limit=3600,          # Hard limit: 1 hour
    task_soft_time_limit=3000,      # Soft limit: 50 minutes
    task_acks_late=True,            # Acknowledge after completion
    task_reject_on_worker_lost=True,
    worker_prefetch_multiplier=1,   # Don't prefetch too many tasks
)

@app.task(
    bind=True,
    max_retries=3,
    default_retry_delay=60,
    autoretry_for=(ConnectionError, TimeoutError),
)
def process_payment(self, payment_id: str) -> dict:
    """Process payment with automatic retry on transient errors."""
    try:
        result = payment_gateway.charge(payment_id)
        return {"status": "success", "transaction_id": result.id}
    except PaymentDeclinedError as e:
        # Don't retry permanent failures
        return {"status": "declined", "reason": str(e)}
    except TransientError as e:
        # Retry with exponential backoff
        raise self.retry(exc=e, countdown=2 ** self.request.retries * 60)

Pattern 3: Make Tasks Idempotent

Workers may retry on crash or timeout. Design for safe re-execution.

@app.task(bind=True)
def process_order(self, order_id: str) -> None:
    """Process order idempotently."""
    order = orders_repo.get(order_id)

    # Already processed? Return early
    if order.status == OrderStatus.COMPLETED:
        logger.info("Order already processed", order_id=order_id)
        return

    # Already in progress? Check if we should continue
    if order.status == OrderStatus.PROCESSING:
        # Use idempotency key to avoid double-charging
        pass

    # Process with idempotency key
    result = payment_provider.charge(
        amount=order.total,
        idempotency_key=f"order-{order_id}",  # Critical!
    )

    orders_repo.update(order_id, status=OrderStatus.COMPLETED)

Idempotency Strategies:

  1. Check-before-write: Verify state before action
  2. Idempotency keys: Use unique tokens with external services
  3. Upsert patterns: INSERT ... ON CONFLICT UPDATE
  4. Deduplication window: Track processed IDs for N hours

Pattern 4: Job State Management

Persist job state transitions for visibility and debugging.

class JobRepository:
    """Repository for managing job state."""

    async def create(self, job: Job) -> Job:
        """Create new job record."""
        await self._db.execute(
            """INSERT INTO jobs (id, status, created_at)
               VALUES ($1, $2, $3)""",
            job.id, job.status.value, job.created_at,
        )
        return job

    async def update_status(
        self,
        job_id: str,
        status: JobStatus,
        **fields,
    ) -> None:
        """Update job status with timestamp."""
        updates = {"status": status.value, **fields}

        if status == JobStatus.RUNNING:
            updates["started_at"] = datetime.utcnow()
        elif status in (JobStatus.SUCCEEDED, JobStatus.FAILED):
            updates["completed_at"] = datetime.utcnow()

        await self._db.execute(
            "UPDATE jobs SET status = $1, ... WHERE id = $2",
            updates, job_id,
        )

        logger.info(
            "Job status updated",
            job_id=job_id,
            status=status.value,
        )

Detailed worked examples and patterns

Detailed sections (starting with ## Advanced Patterns) live in references/details.md. Read that file when the navigation summary above is insufficient.

Best Practices Summary

  1. Return immediately - Don't block requests for long operations
  2. Persist job state - Enable status polling and debugging
  3. Make tasks idempotent - Safe to retry on any failure
  4. Use idempotency keys - For external service calls
  5. Set timeouts - Both soft and hard limits
  6. Implement DLQ - Capture permanently failed tasks
  7. Log transitions - Track job state changes
  8. Retry appropriately - Exponential backoff for transient errors
  9. Don't retry permanent failures - Validation errors, invalid credentials
  10. Monitor queue depth - Alert on backlog growth

Frequently asked questions about Python Background Jobs

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