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⏱ 2h 36m📚 26 lessons
Deep Learning Development with PyTorch and TensorFlow
Learn the foundational theory of neural networks and gain practical skills to implement and deploy robust Deep Learning models using both PyTorch and TensorFlow.
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About this course
Do you want to master the core concepts behind modern artificial intelligence and build complex systems that learn from data? Deep Learning skills are essential for creating cutting-edge applications in fields like computer vision and natural language processing.
This course provides a comprehensive pathway for aspiring Deep Learning developers, moving systematically from foundational mathematics and theoretical models to hands-on implementation. By practicing implementation in both PyTorch and TensorFlow, you will gain the flexibility required to tackle real-world modeling and production deployment challenges.
What you'll learn:
* Understand the mathematical foundations of neural networks, including backpropagation, loss functions, and optimization techniques.
* Build and train foundational network architectures like CNNs and RNNs using the PyTorch framework.
* Apply practical model development workflows, including data preparation, monitoring, and hyperparameter tuning in TensorFlow.
* Practice implementing modern deep learning concepts, such as transfer learning and attention mechanisms, to enhance model performance.
* Configure basic MLOps principles for model deployment, focusing on container fundamentals and GPU optimization for production environments.
The material begins with essential terminology and theoretical concepts before transitioning into practical coding exercises and detailed explanations of framework usage. You will progress through building increasingly complex models, culminating in preparing a model for deployment.
This course is designed specifically for beginners with basic programming knowledge who are ready to start a career in machine learning or AI development. There are no prerequisites other than a dedication to reading and practicing the written exercises.
Start your journey toward becoming a skilled Deep Learning practitioner today.
What you'll get
📜Certificate of completion Add it to your LinkedIn profile
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⚡Short & focused 2h 36m of practical content
Certificate of completion
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Deep Learning Development with PyTorch and TensorFlow
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Deep Learning Development with PyTorch and TensorFlow