Udemy
Artificial Intelligence with Machine Learning, Deep Learning
Artificial Intelligence · Data Science · Development
Library / Artificial Intelligence
On Udemy
Artificial Intelligence is reshaping every industry—from finance and healthcare to retail and manufacturing. Becoming an AI Engineer requires a solid foundation across machine learning, deep learning, cloud platforms, data engineering, and real-world deployment practices. This course, AI Engineer Zero to Hero Mastery: 6 Practice Tests, is designed to help you test and validate your skills across the full AI engineering lifecycle through realistic, scenario-based, expert-level practice questions.
With 6 full-length practice tests, the course provides over 400+ questions covering both conceptual clarity and hands-on implementation across a modern AI engineer’s stack. The practice questions are tailored to simulate interview challenges, certification-level questions, and project-level understanding.
Key Areas You’ll Practice:1. Machine Learning Fundamentals:
Cover core concepts such as supervised vs. unsupervised learning, model evaluation metrics, bias-variance trade-off, and essential algorithms like Random Forest, XGBoost, and KMeans.2. Deep Learning & Neural Networks:
Dive into CNNs, RNNs, Transformers, and the role of transfer learning with frameworks like PyTorch, TensorFlow, and Hugging Face.3. MLOps & Model Lifecycle:
Learn to manage the entire ML lifecycle with CI/CD workflows, model versioning, monitoring, and reproducibility using MLflow, DVC, and wandb.4. Cloud AI Platforms:
Practice AI development using platforms like AWS SageMaker, Azure ML, GCP Vertex AI, and OpenShift AI, including multi-cloud deployment strategies.5. Data Engineering for AI:Understand ETL pipelines, data lakes, streaming data systems, feature stores, and tools like Kafka, Spark, and Feast to ensure data readiness for AI.6. Responsible AI & Explainabil
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Udemy: 2026-09-27 · Coursera: 2026-09-27
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