COU Coursera

Train, Tune, & Ship: End-to-End Machine Learning Engineering

313 students enrolled
This comprehensive program takes you through the complete machine learning engineering lifecycle, from training your first models to shipping optimized, production-ready systems. You'll develop the technical depth and practical judgment needed to build ML systems that perform reliably at scale. Starting with foundational model training and evaluation, you'll progress through hands-on courses covering hyperparameter tuning, custom neural network design, computer vision, and deep learning optimization. Each course emphasizes real-world workflows using industry-standard tools including PyTorch, TensorFlow, scikit-learn, and SHAP, ensuring the skills you build translate directly to professional ML engineering roles. You'll learn to diagnose training instability, tune models systematically, validate performance rigorously, and explain model behavior to both technical and non-technical stakeholders. The program also covers critical production considerations including computational cost benchmarking, algorithm selection, model quantization, and edge deployment using TensorFlow Lite. By program completion, you'll possess the end-to-end skills to confidently take a machine learning problem from business requirement to deployed, optimized solution, making you a more effective and versatile ML practitioner.
CERTIFICATEKatılım Sertifikası
FORMAT100% Online
DURATION1 ay

What you'll learn

  • Model Training
  • Statistical Modeling
  • Scikit Learn (Machine Learning Library)
  • Applied Machine Learning
  • Supervised Learning
  • Machine Learning Methods
  • Predictive Analytics
  • Statistical Machine Learning
  • Technical Communication
  • Predictive Modeling
  • Model Optimization
  • Performance Metric

Course Content

11 topics
  1. Kurs 1 ML: Build, Train, Justify Models
  2. Kurs 2 Model Training & Evaluation
  3. Kurs 3 Optimize AI: Build & Evaluate Predictive Models
  4. Kurs 4 Optimize ML Models: Hyperparameter Tuning
  5. Kurs 5 Choose Cost-Effective ML Algorithms Fast
  6. Kurs 6 Optimize and Benchmark AI Algorithms for Speed
  7. Kurs 7 Validate and Explain Your ML Models
  8. Kurs 8 Design and Build Custom Neural Networks
  9. Kurs 9 Vision Models: Train and Evaluate
  10. Kurs 10 Optimize Deep Learning Models for Peak AI
  11. Kurs 11 Build & Optimize TensorFlow ML Workflows

Details

  • ProviderCoursera
  • TypeCourse
  • CategoryData Science & AI
  • LevelIntermediate
  • Duration1 ay
  • LanguageEnglish

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Ramazan Bölükbaşı
Çok yoğun programı olan öğrenciler için büyük bir fırsat. Bir şeylerin gelişmesi değişmesi için çabalamalıyız.
Melis Gülsar
Hızlı desteği ve üst düzey hizmeti ile Campus Online ve Sosyal Medya Sertifika Programı hizmeti sağlayan Adnan Menderes Üniversitesine sonsuz teşekkürlerimi sunuyorum.
Nazif Bayram
$49
CampusOnline Assistant
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