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AIintermediate

Deep Learning Foundations

Build and train neural networks from scratch. By the end you will implement forward and backward passes in NumPy, tune optimizers and regularizers to close the train-val gap, design convolutional architectures for image tasks, and read transformer papers fluently — understanding self-attention, multi-head attention, and positional encodings from first principles.

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Lessons, in order

  1. 1
    AI
    Neural Networks and Backpropagation
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  2. 2
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    Training: Optimization and Regularization
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  3. 3
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    Convolutional Neural Networks
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  4. 4
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    Attention and Transformers
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