Data Science: Deep Learning and Neural Networks in Python
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Data Science: Deep Learning and Neural Networks in Python
$84.99
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Data Science: Deep Learning and Neural Networks in Python
★★★★★
$20.00 in stock
Udemy.com
as of November 10, 2025 10:25 pm
The MOST in-depth look at neural network theory for machine learning, with both pure Python and Tensorflow code
Created by:
Lazy Programmer Inc.
Artificial intelligence and machine learning engineer
Artificial intelligence and machine learning engineer
Created by:
Lazy Programmer Team
Artificial Intelligence and Machine Learning Engineer
Artificial Intelligence and Machine Learning Engineer
Rating:4.65 (10039reviews)
59981students enrolled
What Will I Learn?
- Learn how Deep Learning REALLY works (not just some diagrams and magical black box code)
- Learn how a neural network is built from basic building blocks (the neuron)
- Code a neural network from scratch in Python and numpy
- Code a neural network using Google's TensorFlow
- Describe different types of neural networks and the different types of problems they are used for
- Derive the backpropagation rule from first principles
- Create a neural network with an output that has K > 2 classes using softmax
- Describe the various terms related to neural networks, such as "activation", "backpropagation" and "feedforward"
- Install TensorFlow
- Understand important foundations for OpenAI ChatGPT, GPT-4, DALL-E, Midjourney, and Stable Diffusion
Requirements
- Basic math (calculus derivatives, matrix arithmetic, probability)
- Install Numpy and Python
- Don't worry about installing TensorFlow, we will do that in the lectures.
- Being familiar with the content of my logistic regression course (cross-entropy cost, gradient descent, neurons, XOR, donut) will give you the proper context for this course
Target audience
- Students interested in machine learning - you'll get all the tidbits you need to do well in a neural networks course
- Professionals who want to use neural networks in their machine learning and data science pipeline. Be able to apply more powerful models, and know its drawbacks.
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