Python Django + ML Integration – Certification Course

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About Course

মডিউল – ১ : Introduction to Django & Machine Learning Integration

  • Overview of Django framework
  • Basics of Machine Learning workflows
  • Benefits of combining Django with ML
  • Deployment options for ML models in web applications

মডিউল – ২ : Setting Up Django Project

  • Installing Django & dependencies
  • Creating Django project & apps
  • Configuring project settings for ML integration
  • Directory structure for ML models

মডিউল – ৩ : Preparing Machine Learning Models

  • Importing ML libraries: scikit-learn, TensorFlow, PyTorch, XGBoost
  • Loading and using pre-trained ML models
  • Saving models with Pickle / Joblib / ONNX
  • Model versioning for deployment

মডিউল – ৪ : Integrating ML Models with Django

  • Loading ML models in Django views
  • Creating APIs for ML predictions using Django REST Framework
  • Input validation and preprocessing in Django
  • Handling prediction requests and responses

মডিউল – ৫ : Building ML-powered Django Applications

  • Creating templates to display predictions
  • Displaying ML results on HTML pages
  • Dynamic dashboards using Django + Plotly / Chart.js
  • User interaction & feedback collection

মডিউল – ৬ : Real-Time ML Predictions

  • Using Django Channels for real-time ML predictions
  • WebSocket integration for live prediction updates
  • Async processing for heavy ML tasks
  • Queue management with Celery + Redis

মডিউল – ৭ : Security & Optimization

  • Securing ML endpoints in Django
  • Optimizing model loading & prediction performance
  • Handling large datasets efficiently
  • Logging & monitoring ML API requests

মডিউল – ৮ : Deployment of Django + ML Applications

  • Deploying Django + ML apps on Heroku / AWS / GCP
  • Containerized deployment using Docker
  • Continuous integration & testing for ML updates
  • Monitoring ML model performance in production

মডিউল – ৯ : Final Project / Capstone

  • Build a real-world Django web app with ML integration (e.g., sentiment analysis, recommendation system, predictive analytics)
  • Include:

    • API endpoints for predictions
    • Web dashboard for displaying results
    • Real-time updates & user feedback
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