Data Science Courses
course
Mean Field Theory for Neural Networks
Advanced
Acquired skills: Mean Field Theory in Neural Networks, Distributional Analysis of Neural Networks, Large-Width Limit Theory, Training Dynamics in Mean Field Regimes, Theoretical Deep Learning Insights
course
Model Calibration with Python
Intermediate
Acquired skills: Probabilistic Model Calibration, Reliability Diagrams, Calibration Metrics (ECE, MCE, Brier Score), Platt Scaling, Isotonic Regression, Histogram Binning, Applied Calibration Workflows
course
Neural Network Attention Mechanisms
Advanced
Acquired skills: Attention Mechanisms Theory, Self-Attention Intuition, Multi-Head Attention Concepts, Transformer Architecture Understanding, Mathematical Foundations of Attention
course
Neural Tangent Kernel Theory
Advanced
Acquired skills: Infinite-Width Neural Network Theory, Gaussian Process Correspondence, Neural Tangent Kernel Formalism, Kernel Regression Dynamics, Critical Analysis of NTK Limitations
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Reinforcement Learning from Human Feedback Theory
Advanced
Acquired skills: Formal Preference Modeling, Reward Model Theory, Optimization Dynamics in RLHF, Alignment and Generalization Risks
course
Reproducing Kernel Hilbert Spaces Theory
Advanced
Acquired skills: RKHS Foundations, Positive Definite Kernels, Functional Analysis in ML, Reproducing Property, Representer Theorem, Kernel-based Regularization
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Tokenization and Information Theory
Advanced
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Acquired skills: Tokenization Theory, Information Theory Basics, Subword Tokenization Algorithms, Entropy and Compression, Vocabulary Optimization
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Data Science Courses: Key Info and Questions
1. | Introduction to Neural Networks with Python | ||
2. | Introduction to Machine Learning with Python | ||
3. | Introduction to NLP with Python | ||
4. | Introduction to TensorFlow | ||
5. | Linear Regression with Python |




