Forwarded from Machine Learning with Python
π A fresh deep learning course from MIT is now publicly available
A full-fledged educational course has been published on the university's website: 24 lectures, practical assignments, homework, and a collection of materials for self-study.
The program includes modern neural network architectures, generative models, transformers, inference, and other key topics.
β‘οΈ Link to the course
tags: #Python #DataScience #DeepLearning #AI
A full-fledged educational course has been published on the university's website: 24 lectures, practical assignments, homework, and a collection of materials for self-study.
The program includes modern neural network architectures, generative models, transformers, inference, and other key topics.
β‘οΈ Link to the course
tags: #Python #DataScience #DeepLearning #AI
β€2
π Hybrid Neuro-Symbolic Fraud Detection: Guiding Neural Networks with Domain Rules
π Category: DEEP LEARNING
π Date: 2026-03-10 | β±οΈ Read time: 14 min read
I really thought I was onto something big: add a couple of simple domain rulesβ¦
#DataScience #AI #Python
π Category: DEEP LEARNING
π Date: 2026-03-10 | β±οΈ Read time: 14 min read
I really thought I was onto something big: add a couple of simple domain rulesβ¦
#DataScience #AI #Python
β€1
π When Data Lies: Finding Optimal Strategies for Penalty Kicks with Game Theory
π Category: DATA SCIENCE
π Date: 2026-03-10 | β±οΈ Read time: 9 min read
A data-driven introduction to game theory, Nash equilibrium, and strategic decision-making
#DataScience #AI #Python
π Category: DATA SCIENCE
π Date: 2026-03-10 | β±οΈ Read time: 9 min read
A data-driven introduction to game theory, Nash equilibrium, and strategic decision-making
#DataScience #AI #Python
Forwarded from Machine Learning with Python
π 23 Years of SPOTO β Claim Your Free IT Certs Prep Kit!
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β°Last Chance β Get It Before Itβs Gone!
π₯Whether you're preparing for #Python, #AI, #Cisco, #PMI, #Fortinet, #AWS, #Azure, #Excel, #comptia, #ITIL, #cloud or any other in-demand certification β SPOTO has got you covered!
β Free Resources :
γ»Free Python, Excel, Cyber Security, Cisco, SQL, ITIL, PMP, AWS courses: https://bit.ly/4lk4m3c
γ»IT Certs E-book: https://bit.ly/4bdZOqt
γ»IT Exams Skill Test: https://bit.ly/4sDvi0b
γ»Free AI material and support tools: https://bit.ly/46TpsQ8
γ»Free Cloud Study Guide: https://bit.ly/4lk3dIS
π Join SPOTO 23rd anniversary Lucky Draw:
π± iPhone 17
πfree order
π Amazon Gift Card $50/$100
π AI/CCNA/PMP Course Training + Study Material + eBook
Enter the Draw π: https://bit.ly/3NwkceD
π Become Part of Our IT Learning Circle! resources and support:
https://chat.whatsapp.com/Cnc5M5353oSBo3savBl397
π¬ Want exam help? Chat with an admin now!
wa.link/rozuuw
β°Last Chance β Get It Before Itβs Gone!
π How the Fourier Transform Converts Sound Into Frequencies
π Category: MACHINE LEARNING
π Date: 2026-03-11 | β±οΈ Read time: 26 min read
A visual, intuition-first guide to understanding what the math is really doing β from windingβ¦
#DataScience #AI #Python
π Category: MACHINE LEARNING
π Date: 2026-03-11 | β±οΈ Read time: 26 min read
A visual, intuition-first guide to understanding what the math is really doing β from windingβ¦
#DataScience #AI #Python
β€1
π An Intuitive Guide to MCMC (Part I): The Metropolis-Hastings Algorithm
π Category: MATH
π Date: 2026-03-11 | β±οΈ Read time: 14 min read
Tired of the AI hype? Letβs talk about the probabilistic algorithms actually driving high-end quantitativeβ¦
#DataScience #AI #Python
π Category: MATH
π Date: 2026-03-11 | β±οΈ Read time: 14 min read
Tired of the AI hype? Letβs talk about the probabilistic algorithms actually driving high-end quantitativeβ¦
#DataScience #AI #Python
π Spectral Clustering Explained: How Eigenvectors Reveal Complex Cluster Structures
π Category: MACHINE LEARNING
π Date: 2026-03-11 | β±οΈ Read time: 10 min read
Understanding why spectral clustering outperforms K-means
#DataScience #AI #Python
π Category: MACHINE LEARNING
π Date: 2026-03-11 | β±οΈ Read time: 10 min read
Understanding why spectral clustering outperforms K-means
#DataScience #AI #Python
β€2
π Why Most A/B Tests Are Lying to You
π Category: DATA SCIENCE
π Date: 2026-03-11 | β±οΈ Read time: 14 min read
The 4 statistical sins that invalidate most A/B tests, plus a pre-test checklist and Bayesianβ¦
#DataScience #AI #Python
π Category: DATA SCIENCE
π Date: 2026-03-11 | β±οΈ Read time: 14 min read
The 4 statistical sins that invalidate most A/B tests, plus a pre-test checklist and Bayesianβ¦
#DataScience #AI #Python
π Exploratory Data Analysis for Credit Scoring with Python
π Category: DATA SCIENCE
π Date: 2026-03-12 | β±οΈ Read time: 16 min read
Understanding default risk through statistical analysis of borrower and loan characteristics.
#DataScience #AI #Python
π Category: DATA SCIENCE
π Date: 2026-03-12 | β±οΈ Read time: 16 min read
Understanding default risk through statistical analysis of borrower and loan characteristics.
#DataScience #AI #Python
Forwarded from Machine Learning with Python
Machine Learning in python.pdf
1 MB
Machine Learning in Python (Course Notes)
I just went through an amazing resource on #MachineLearning in #Python by 365 Data Science, and I had to share the key takeaways with you!
Hereβs what youβll learn:
π Linear Regression - The foundation of predictive modeling
π Logistic Regression - Predicting probabilities and classifications
π Clustering (K-Means, Hierarchical) - Making sense of unstructured data
π Overfitting vs. Underfitting - The balancing act every ML engineer must master
π OLS, R-squared, F-test - Key metrics to evaluate your models
https://t.me/CodeProgrammer || Shareπ and Like π
I just went through an amazing resource on #MachineLearning in #Python by 365 Data Science, and I had to share the key takeaways with you!
Hereβs what youβll learn:
π Linear Regression - The foundation of predictive modeling
π Logistic Regression - Predicting probabilities and classifications
π Clustering (K-Means, Hierarchical) - Making sense of unstructured data
π Overfitting vs. Underfitting - The balancing act every ML engineer must master
π OLS, R-squared, F-test - Key metrics to evaluate your models
https://t.me/CodeProgrammer || Share
Please open Telegram to view this post
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Forwarded from Machine Learning with Python
Follow the Machine Learning with Python channel on WhatsApp: https://whatsapp.com/channel/0029VaC7Weq29753hpcggW2A
β€1
π Solving the Human Training Data Problem
π Category: LARGE LANGUAGE MODELS
π Date: 2026-03-12 | β±οΈ Read time: 18 min read
How AI has completely transformed the way I study as a graduate student
#DataScience #AI #Python
π Category: LARGE LANGUAGE MODELS
π Date: 2026-03-12 | β±οΈ Read time: 18 min read
How AI has completely transformed the way I study as a graduate student
#DataScience #AI #Python
π Scaling Vector Search: Comparing Quantization and Matryoshka Embeddings for 80% Cost Reduction
π Category: MACHINE LEARNING
π Date: 2026-03-12 | β±οΈ Read time: 11 min read
Navigating the performance cliff: How pairing MRL with int8 and binary quantization balances infrastructure costsβ¦
#DataScience #AI #Python
π Category: MACHINE LEARNING
π Date: 2026-03-12 | β±οΈ Read time: 11 min read
Navigating the performance cliff: How pairing MRL with int8 and binary quantization balances infrastructure costsβ¦
#DataScience #AI #Python
π I Finally Built My First AI App (And It Wasnβt What I Expected)
π Category: LARGE LANGUAGE MODELS
π Date: 2026-03-12 | β±οΈ Read time: 14 min read
A beginner-friendly walkthrough of API calls, environment variables, and real-world AI infrastructure
#DataScience #AI #Python
π Category: LARGE LANGUAGE MODELS
π Date: 2026-03-12 | β±οΈ Read time: 14 min read
A beginner-friendly walkthrough of API calls, environment variables, and real-world AI infrastructure
#DataScience #AI #Python
β€1
π A Tale of Two Variances: Why NumPy and Pandas Give Different Answers
π Category: DATA SCIENCE
π Date: 2026-03-13 | β±οΈ Read time: 7 min read
Imagine you are analyzing a small dataset: You want to calculate some summary statistics toβ¦
#DataScience #AI #Python
π Category: DATA SCIENCE
π Date: 2026-03-13 | β±οΈ Read time: 7 min read
Imagine you are analyzing a small dataset: You want to calculate some summary statistics toβ¦
#DataScience #AI #Python
π How to Build Agentic RAG with Hybrid Search
π Category: RAG
π Date: 2026-03-13 | β±οΈ Read time: 7 min read
Learn how to build a powerful agentic RAG system
#DataScience #AI #Python
π Category: RAG
π Date: 2026-03-13 | β±οΈ Read time: 7 min read
Learn how to build a powerful agentic RAG system
#DataScience #AI #Python
Forwarded from Machine Learning with Python
π Building our own mini-Skynet β a collection of 10 powerful AI repositories from big tech companies
1. Generative AI for Beginners and AI Agents for Beginners
Microsoft provides a detailed explanation of generative AI and agent architecture: from theory to practice.
2. LLMs from Scratch
Step-by-step assembly of your own GPT to understand how LLMs are structured "under the hood".
3. OpenAI Cookbook
An official set of examples for working with APIs, RAG systems, and integrating AI into production from OpenAI.
4. Segment Anything and Stable Diffusion
Classic tools for computer vision and image generation from Meta and the CompVis research team.
5. Python 100 Days and Python Data Science Handbook
A powerful resource for Python and data analysis.
6. LLM App Templates and ML for Beginners
Ready-made app templates with LLMs and a structured course on classic machine learning.
If you want to delve deeply into AI or start building your own projects β this is an excellent starting kit.
tags: #github #LLM #AI #ML
β‘οΈ https://t.me/CodeProgrammer
1. Generative AI for Beginners and AI Agents for Beginners
Microsoft provides a detailed explanation of generative AI and agent architecture: from theory to practice.
2. LLMs from Scratch
Step-by-step assembly of your own GPT to understand how LLMs are structured "under the hood".
3. OpenAI Cookbook
An official set of examples for working with APIs, RAG systems, and integrating AI into production from OpenAI.
4. Segment Anything and Stable Diffusion
Classic tools for computer vision and image generation from Meta and the CompVis research team.
5. Python 100 Days and Python Data Science Handbook
A powerful resource for Python and data analysis.
6. LLM App Templates and ML for Beginners
Ready-made app templates with LLMs and a structured course on classic machine learning.
If you want to delve deeply into AI or start building your own projects β this is an excellent starting kit.
tags: #github #LLM #AI #ML
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π Why Care About Prompt Caching in LLMs?
π Category: LARGE LANGUAGE MODELS
π Date: 2026-03-13 | β±οΈ Read time: 11 min read
Optimizing the cost and latency of your LLM calls with Prompt Caching
#DataScience #AI #Python
π Category: LARGE LANGUAGE MODELS
π Date: 2026-03-13 | β±οΈ Read time: 11 min read
Optimizing the cost and latency of your LLM calls with Prompt Caching
#DataScience #AI #Python
π How Vision Language Models Are Trained from βScratchβ
π Category: LARGE LANGUAGE MODELS
π Date: 2026-03-13 | β±οΈ Read time: 13 min read
A deep dive into exactly how text-only language models are finetuned to see images
#DataScience #AI #Python
π Category: LARGE LANGUAGE MODELS
π Date: 2026-03-13 | β±οΈ Read time: 13 min read
A deep dive into exactly how text-only language models are finetuned to see images
#DataScience #AI #Python
β€3