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Auralis Worker Node - Distributed AI Compute Platform

Project description

🌌 Auralis Worker Node

The worker node polls for pending jobs, executes them in Docker containers, and streams logs back to the dashboard.

Prerequisites

  • Python 3.10+
  • Docker installed and running
  • AWS credentials configured
  • Supabase credentials configured

Setup

  1. Install dependencies:

    pip install -r requirements.txt
    
  2. Configure environment variables: Create a .env file in the worker directory:

    # Supabase
    SUPABASE_URL=your-supabase-url
    SUPABASE_SERVICE_ROLE_KEY=your-service-role-key
    
    # AWS S3
    AWS_ACCESS_KEY_ID=your-aws-key
    AWS_SECRET_ACCESS_KEY=your-aws-secret
    AWS_REGION=us-east-1
    S3_BUCKET_NAME=auralis-job
    
    # Worker Config
    WORKER_ID=my-local-worker
    COMPUTE_TYPE=cpu
    POLL_INTERVAL=10
    WORK_DIR=/tmp/auralis-worker
    

Usage

Auto-Poll Mode (Default)

Continuously polls for pending jobs and executes them:

python main.py

Run Specific Job

Execute a specific job by ID:

python main.py --job-id abc123-def456

Options

-j, --job-id    Run a specific job by ID
-w, --worker-id Unique worker identifier (default: worker-<pid>)

How It Works

  1. Poll: Worker checks Supabase for PENDING jobs
  2. Claim: Worker atomically claims a job (PENDINGCLAIMED)
  3. Download: Downloads project zip from S3
  4. Build: Builds Docker image from Dockerfile
  5. Run: Executes container with output volume mounted
  6. Stream: Logs are streamed to Supabase in real-time
  7. Upload: Output files are uploaded to S3
  8. Complete: Job marked as COMPLETED or FAILED

Architecture

worker/
├── main.py           # Entry point, polling loop
├── job_runner.py     # Docker build & run logic
├── supabase_client.py # Job queries & log streaming
├── s3_client.py      # File upload/download
└── requirements.txt  # Dependencies

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