MACHINELEARNING_PROGRAMMING Telegram 333
πŸ“š Become a professional data scientist with these 17 resources!



1️⃣ Python libraries for machine learning

◀️ Introducing the best Python tools and packages for building ML models.

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2️⃣ Deep Learning Interactive Book

◀️ Learn deep learning concepts by combining text, math, code, and images.

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3️⃣ Anthology of Data Science Learning Resources

◀️ The best courses, books, and tools for learning data science.

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4️⃣ Implementing algorithms from scratch

◀️ Coding popular ML algorithms from scratch

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5️⃣ Machine Learning Interview Guide

◀️ Fully prepared for job interviews

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6️⃣ Real-world machine learning projects

◀️ Learning how to build and deploy models.

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7️⃣ Designing machine learning systems

◀️ How to design a scalable and stable ML system.

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8️⃣ Machine Learning Mathematics

◀️ Basic mathematical concepts necessary to understand machine learning.

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9️⃣ Introduction to Statistical Learning

◀️ Learn algorithms with practical examples.

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1️⃣ Machine learning with a probabilistic approach

◀️ Better understanding modeling and uncertainty with a statistical perspective.

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1️⃣ UBC Machine Learning

◀️ Deep understanding of machine learning concepts with conceptual teaching from one of the leading professors in the field of ML,

βž–βž–βž–

1️⃣ Deep Learning with Andrew Ng

◀️ A strong start in the world of neural networks, CNNs and RNNs.

βž–βž–βž–

1️⃣ Linear Algebra with 3Blue1Brown

◀️ Intuitive and visual teaching of linear algebra concepts.

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πŸ”΄ Machine Learning Course

◀️ A combination of theory and practical training to strengthen ML skills.

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1️⃣ Mathematical Optimization with Python

◀️ You will learn the basic concepts of optimization with Python code.

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1️⃣ Explainable models in machine learning

◀️ Making complex models understandable.

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⚫️ Data Analysis with Python

◀️ Data analysis skills using Pandas and NumPy libraries.


βœ… @MachineLearning_Programming
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πŸ“š Become a professional data scientist with these 17 resources!



1️⃣ Python libraries for machine learning

◀️ Introducing the best Python tools and packages for building ML models.

βž–βž–βž–

2️⃣ Deep Learning Interactive Book

◀️ Learn deep learning concepts by combining text, math, code, and images.

βž–βž–βž–

3️⃣ Anthology of Data Science Learning Resources

◀️ The best courses, books, and tools for learning data science.

βž–βž–βž–

4️⃣ Implementing algorithms from scratch

◀️ Coding popular ML algorithms from scratch

βž–βž–βž–

5️⃣ Machine Learning Interview Guide

◀️ Fully prepared for job interviews

βž–βž–βž–

6️⃣ Real-world machine learning projects

◀️ Learning how to build and deploy models.

βž–βž–βž–

7️⃣ Designing machine learning systems

◀️ How to design a scalable and stable ML system.

βž–βž–βž–

8️⃣ Machine Learning Mathematics

◀️ Basic mathematical concepts necessary to understand machine learning.

βž–βž–βž–

9️⃣ Introduction to Statistical Learning

◀️ Learn algorithms with practical examples.

βž–βž–βž–

1️⃣ Machine learning with a probabilistic approach

◀️ Better understanding modeling and uncertainty with a statistical perspective.

βž–βž–βž–

1️⃣ UBC Machine Learning

◀️ Deep understanding of machine learning concepts with conceptual teaching from one of the leading professors in the field of ML,

βž–βž–βž–

1️⃣ Deep Learning with Andrew Ng

◀️ A strong start in the world of neural networks, CNNs and RNNs.

βž–βž–βž–

1️⃣ Linear Algebra with 3Blue1Brown

◀️ Intuitive and visual teaching of linear algebra concepts.

βž–βž–βž–

πŸ”΄ Machine Learning Course

◀️ A combination of theory and practical training to strengthen ML skills.

βž–βž–βž–

1️⃣ Mathematical Optimization with Python

◀️ You will learn the basic concepts of optimization with Python code.

βž–βž–βž–

1️⃣ Explainable models in machine learning

◀️ Making complex models understandable.

βž–βž–βž–

⚫️ Data Analysis with Python

◀️ Data analysis skills using Pandas and NumPy libraries.


βœ… @MachineLearning_Programming

BY Computer Science and Programming




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