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Learn Machine Learning with hands-on Python tutorials, real-world code examples, and clear explanations for researchers and developers. Admin: @HusseinSheikho || @Hussein_Sheikho

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Machine Learning with Python

ML engineers, take note: structured ML reference guide

Link: https://ml-cheatsheet.readthedocs.io/en/latest/

There are no courses, no redundant theory, and no lengthy lectures here, but there are clear formulas, algorithms, the logic of ML pipelines, and a neatly structured knowledge base.

👉 @codeprogrammer

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Machine Learning with Python

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Machine Learning with Python

Data Science Interview questions

#DeepLearning #AI #MachineLearning #NeuralNetworks #DataScience #DataAnalysis #LLM #InterviewQuestions

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Machine Learning with Python

These Google Colab-notebooks help to implement all machine learning algorithms from scratch 🤯

Repo: https://udlbook.github.io/udlbook/


👉 @codeprogrammer

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Machine Learning with Python

This repository collects everything you need to use AI and LLM in your projects.

120+ libraries, organized by development stages:

→ Model training, fine-tuning, and evaluation
→ Deploying applications with LLM and RAG
→ Fast and scalable model launch
→ Data extraction, crawlers, and scrapers
→ Creating autonomous LLM agents
→ Prompt optimization and security

Repo: https://github.com/KalyanKS-NLP/llm-engineer-toolkit

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Machine Learning with Python

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Machine Learning with Python

Best GitHub repositories to learn AI from scratch in 2026:


1. Andrej Karpathy
https://github.com/karpathy/nn-zero-to-hero

2. Hugging Face Transformers
https://github.com/huggingface/transformers

3. FastAI/fastbook
https://github.com/fastai/fastbook

4. Made-With-ML
https://github.com/GokuMohandas/Made-With-ML

5. ML System Design
https://github.com/chiphuyen/machine-learning-systems-design

6. Awesome Generative AI guide
https://github.com/aishwaryanr/awesome-generative-ai-guide

7. Dive into Deep Learning
https://github.com/d2l-ai/d2l-en

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Machine Learning with Python

🤖 Machine Learning Tutorials Repository

1. Python
2
. Computer Vision: Techniques, algorithms
3
. NLP
4.
Matplotlib
5. NumPy
6. Pandas
7.
MLOps
8. LLMs
9.
PyTorch/TensorFlow

git clone https://github.com/patchy631/machine-learning

🔗 GitHub: https://github.com/patchy631/machine-learning/tree/main

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Machine Learning with Python

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Machine Learning with Python

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Machine Learning with Python

Deep Delta Learning

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Machine Learning with Python

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Machine Learning with Python

4 learning paradigms in machine learning, explained visually:

1. Transfer Learning
2. Fine-tuning
3. Multi-task Learning
4. Federated Learning

👉 @DataScienceM

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Machine Learning with Python

Machine Learning Interview prep

repo:
https://github.com/khangich/machine-learning-interview?tab=readme-ov-file

/channel/CodeProgrammer ✍️

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Machine Learning with Python

Микро-каналы — главный тренд на рынке телеграма среди рекламодателей в этом году

Канал на пару десятков читателей есть почти у каждого, но где найти клиентов с деньгами?

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Проще уже не будет

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Machine Learning with Python

🅰 Админотека — если у тебя есть тгк и ты тоже не хочешь ходить на работу

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Machine Learning with Python

💛 Top 10 Best Websites to Learn Machine Learning ⭐️
by [@codeprogrammer]

---

🧠 Google’s ML Course
🔗 https://developers.google.com/machine-learning/crash-course

📈 Kaggle Courses
🔗 https://kaggle.com/learn

🧑‍🎓 Coursera – Andrew Ng’s ML Course
🔗 https://coursera.org/learn/machine-learning

⚡️ Fast.ai
🔗 https://fast.ai

🔧 Scikit-Learn Documentation
🔗 https://scikit-learn.org

📹 TensorFlow Tutorials
🔗 https://tensorflow.org/tutorials

🔥 PyTorch Tutorials
🔗 https://docs.pytorch.org/tutorials/

🏛️ MIT OpenCourseWare – Machine Learning
🔗 https://ocw.mit.edu/courses/6-867-machine-learning-fall-2006/

✍️ Towards Data Science (Blog)
🔗 https://towardsdatascience.com

---

💡 Which one are you starting with? Drop a comment below! 👇
#MachineLearning #LearnML #DataScience #AI

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Machine Learning with Python

Ant AI Automated Sales Robot is an intelligent robot focused on automating lead generation and sales conversion. Its core function simulates human conversation, achieving end-to-end business conversion and easily generating revenue without requiring significant time investment.

I. Core Functions: Fully Automated "Lead Generation - Interaction - Conversion"

Precise Lead Generation and Human-like Communication: Ant AI is trained on over 20 million real social chat records, enabling it to autonomously identify target customers and build trust through natural conversation, requiring no human intervention.

High Conversion Rate Across Multiple Scenarios: Ant AI intelligently recommends high-conversion-rate products based on chat content, guiding customers to complete purchases through platforms such as iFood, Shopee, and Amazon. It also supports other transaction scenarios such as movie ticket purchases and utility bill payments.

24/7 Operation: Ant AI continuously searches for customers and recommends products. You only need to monitor progress via your mobile phone, requiring no additional management time.

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We have established partnerships with platforms such as Shopee and Amazon, which directly provide abundant product sourcing. You don't need to worry about inventory or logistics. After each successful order, the company will charge the merchant a commission and share all profits with you. Earnings are predictable and withdrawals are convenient. Member data shows that each bot can generate $30 to $100 in profit per day. Commission income can be withdrawn to your account at any time, and the settlement process is transparent and open.

Low Initial Investment Risk. Bot development and testing incur significant costs. While rental fees are required, in the early stages of the project, the company prioritizes market expansion and brand awareness over short-term profits.

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Machine Learning with Python

Build your own AI agent from scratch for free in 5 minutes

In this article, I will show you how to build your first AI agent from scratch using Google’s ADK (Agent Development Kit). This is an open-source framework that makes it easier to create agents, test them, add tools, and even build multi-agent systems.

Read: https://habr.com/en/articles/974212/

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Machine Learning with Python

😎 Machine Learning Cheatsheet — a structured ML guide!

There are no courses here, no unnecessary theory or long lectures, but there are clear formulas, algorithms, the logic of ML pipelines, and a neatly structured knowledge base. It's perfect for quickly refreshing your understanding of algorithms or having it handy as an ML cheat sheet during work.

📌 Here's the link: ml-cheatsheet.readthedocs.io

🚪 @codeprogrammer   | #resource

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Machine Learning with Python

🗂 Cheat Sheet on Beautiful Soup 4 (bs4) in Python: HTML/XML Parsing Made Easy and Simple

Beautiful Soup — a library for extracting data from HTML and XML files, ideal for web scraping.

🔹 Installation

pip install beautifulsoup4


🔹 Import
from bs4 import BeautifulSoup
import requests


🔹 Basic Parsing
html_doc = "<html><body><p class='text'>Hello, world!</p></body></html>"
soup = BeautifulSoup(html_doc, 'html.parser')  # or 'lxml', 'html5lib'
print(soup.p.text)  # Hello, world!


🔹 Element Search
# First found element
first_p = soup.find('p')

# Search by class or attribute
text_elem = soup.find('p', class_='text')
text_elem = soup.find('p', {'class': 'text'})

# All elements
all_p = soup.find_all('p')
all_text_class = soup.find_all(class_='text')


🔹 Working with Attributes and Text
a_tag = soup.find('a')
print(a_tag['href&#39])    # value of the href attribute
print(a_tag.get_text()) # text inside the tag
print(a_tag.text)       # alternative


🔹 Navigating the Tree
# Moving to parent, children, siblings
parent = soup.p.parent
children = soup.ul.children
next_sibling = soup.p.next_sibling

# Finding the previous/next element
prev_elem = soup.find_previous('p')
next_elem = soup.find_next('div')


🔹 Parsing a Real Page
response = requests.get('https://example.com')
soup = BeautifulSoup(response.text, 'html. parser')
title = soup.title.text
links = [a['href'] for a in soup.find_all('a', href=True)]


🔹 CSS Selectors
# More powerful and concise search
items = soup.select('div.content > p.text')
first_item = soup.select_one('a.button')


💡 Where it's useful:
🟢 Web scraping and data collection
🟢 Processing HTML/XML reports
🟢 Automating data extraction from websites
🟢 Preparing data for analysis and machine learning


👩‍💻 @CodeProgrammer

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Machine Learning with Python

Collection of books on machine learning and artificial intelligence in PDF format

Repo: https://github.com/Ramakm/AI-ML-Book-References

#MACHINELEARNING #PYTHON #DATASCIENCE #DATAANALYSIS #DeepLearning

👉 @codeprogrammer

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Machine Learning with Python

YOLO Training Template

Manual data labeling has become significantly more convenient. Now the process looks like in the usual labeling systems - you just outline the object with a frame and a bounding box is immediately created.

The platform allows:

• to upload your own dataset
• to label manually or auto-label via DINOv3
• to enrich the data if desired
• to train a #YOLO model on your own data
• to run inference immediately
• to export to ONNX or NCNN, which ensures compatibility with edge hardware and smartphones

All of this is available for free and can already be tested on #GitHub.

Repo:
https://github.com/computer-vision-with-marco/yolo-training-template

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Machine Learning with Python

Machine Learning Roadmap 2026

#MachineLearning #DeepLearning #AI #NeuralNetworks #DataScience #DataAnalysis #LLM #python

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Machine Learning with Python

Do you want to teach AI on real projects?

In this #repository, there are 29 projects with Generative #AI,#MachineLearning, and #Deep +Learning.

With full #code for each one. This is pure gold: https://github.com/KalyanM45/AI-Project-Gallery

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Machine Learning with Python

🚀 Working on automation projects and need a fast, easy way to extract data?

easybits lets you set up compliant data extraction pipelines in minutes – no complex setup, no maintenance.

Set up data extraction in 4 simple steps:
📄 Upload an example document
🎯 Map the fields to extract
⚙️ Get clean, structured JSON (integration-ready)
🔗 Plug it straight into your scripts or workflows via API

Fully secure and easy to use (GDPR + EU AI Act compliant), and API-ready for Python projects.

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Machine Learning with Python

These Google Colab-notebooks help to implement all machine learning algorithms from scratch 🤯

Repo: https://udlbook.github.io/udlbook/


👉 @codeprogrammer

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Machine Learning with Python

🧠 𝐊-𝐍𝐞𝐚𝐫𝐞𝐬𝐭 𝐍𝐞𝐢𝐠𝐡𝐛𝐨𝐫𝐬 (𝐊𝐍𝐍)⁣

🔹 𝐖𝐡𝐚𝐭 𝐈 𝐜𝐨𝐯𝐞𝐫𝐞𝐝 𝐭𝐨𝐝𝐚𝐲⁣
𝐖𝐡𝐚𝐭 𝐊𝐍𝐍 𝐢𝐬 𝐚𝐧𝐝 𝐡𝐨𝐰 𝐢𝐭 𝐰𝐨𝐫𝐤𝐬⁣
𝐃𝐢𝐟𝐟𝐞𝐫𝐞𝐧𝐜𝐞 𝐛𝐞𝐭𝐰𝐞𝐞𝐧 𝐊𝐍𝐍 𝐟𝐨𝐫 𝐂𝐥𝐚𝐬𝐬𝐢𝐟𝐢𝐜𝐚𝐭𝐢𝐨𝐧 𝐯𝐬 𝐑𝐞𝐠𝐫𝐞𝐬𝐬𝐢𝐨𝐧⁣
𝐑𝐨𝐥𝐞 𝐨𝐟 𝐊 (𝐡𝐲𝐩𝐞𝐫𝐩𝐚𝐫𝐚𝐦𝐞𝐭𝐞𝐫)⁣
𝐃𝐢𝐬𝐭𝐚𝐧𝐜𝐞 𝐦𝐞𝐭𝐫𝐢𝐜𝐬: 𝐄𝐮𝐜𝐥𝐢𝐝𝐞𝐚𝐧 𝐯𝐬 𝐌𝐚𝐧𝐡𝐚𝐭𝐭𝐚𝐧⁣
𝐖𝐡𝐲 𝐊𝐍𝐍 𝐢𝐬 𝐜𝐚𝐥𝐥𝐞𝐝 𝐚 𝐥𝐚𝐳𝐲 / 𝐢𝐧𝐬𝐭𝐚𝐧𝐜𝐞-𝐛𝐚𝐬𝐞𝐝 𝐥𝐞𝐚𝐫𝐧𝐞𝐫⁣

🎯 𝐓𝐨𝐩 𝟏𝟎 𝐈𝐧𝐭𝐞𝐫𝐯𝐢𝐞𝐰 𝐐𝐮𝐞𝐬𝐭𝐢𝐨𝐧𝐬 (𝐌𝐮𝐬𝐭-𝐊𝐧𝐨𝐰)⁣

1️⃣ 𝘞𝘩𝘢𝘵 𝘪𝘴 𝘒-𝘕𝘦𝘢𝘳𝘦𝘴𝘵 𝘕𝘦𝘪𝘨𝘩𝘣𝘰𝘳𝘴 (𝘒𝘕𝘕)?⁣
2️⃣ 𝘞𝘩𝘺 𝘪𝘴 𝘒𝘕𝘕 𝘤𝘢𝘭𝘭𝘦𝘥 𝘢 𝘭𝘢𝘻𝘺 𝘭𝘦𝘢𝘳𝘯𝘪𝘯𝘨 𝘢𝘭𝘨𝘰𝘳𝘪𝘵𝘩𝘮?⁣
3️⃣ 𝘋𝘪𝘧𝘧𝘦𝘳𝘦𝘯𝘤𝘦 𝘣𝘦𝘵𝘸𝘦𝘦𝘯 𝘒𝘕𝘕 𝘤𝘭𝘢𝘴𝘴𝘪𝘧𝘪𝘤𝘢𝘵𝘪𝘰𝘯 𝘢𝘯𝘥 𝘒𝘕𝘕 𝘳𝘦𝘨𝘳𝘦𝘴𝘴𝘪𝘰𝘯?⁣
4️⃣ 𝘏𝘰𝘸 𝘥𝘰 𝘺𝘰𝘶 𝘤𝘩𝘰𝘰𝘴𝘦 𝘵𝘩𝘦 𝘷𝘢𝘭𝘶𝘦 𝘰𝘧 𝘒?⁣
5️⃣ 𝘞𝘩𝘢𝘵 𝘩𝘢𝘱𝘱𝘦𝘯𝘴 𝘸𝘩𝘦𝘯 𝘒 𝘪𝘴 𝘵𝘰𝘰 𝘴𝘮𝘢𝘭𝘭 𝘰𝘳 𝘵𝘰𝘰 𝘭𝘢𝘳𝘨𝘦?⁣
6️⃣ 𝘞𝘩𝘢𝘵 𝘥𝘪𝘴𝘵𝘢𝘯𝘤𝘦 𝘮𝘦𝘵𝘳𝘪𝘤𝘴 𝘢𝘳𝘦 𝘤𝘰𝘮𝘮𝘰𝘯𝘭𝘺 𝘶𝘴𝘦𝘥 𝘪𝘯 𝘒𝘕𝘕?⁣
7️⃣ 𝘞𝘩𝘺 𝘥𝘰𝘦𝘴 𝘒𝘕𝘕 𝘱𝘦𝘳𝘧𝘰𝘳𝘮 𝘱𝘰𝘰𝘳𝘭𝘺 𝘰𝘯 𝘩𝘪𝘨𝘩-𝘥𝘪𝘮𝘦𝘯𝘴𝘪𝘰𝘯𝘢𝘭 𝘥𝘢𝘵𝘢?⁣
8️⃣ 𝘞𝘩𝘢𝘵 𝘪𝘴 𝘵𝘩𝘦 𝘵𝘪𝘮𝘦 𝘤𝘰𝘮𝘱𝘭𝘦𝘹𝘪𝘵𝘺 𝘰𝘧 𝘒𝘕𝘕?⁣
9️⃣ 𝘏𝘰𝘸 𝘥𝘰 𝘒𝘋-𝘛𝘳𝘦𝘦 𝘢𝘯𝘥 𝘉𝘢𝘭𝘭-𝘛𝘳𝘦𝘦 𝘪𝘮𝘱𝘳𝘰𝘷𝘦 𝘒𝘕𝘕 𝘱𝘦𝘳𝘧𝘰𝘳𝘮𝘢𝘯𝘤𝘦?⁣
🔟 𝘞𝘩𝘦𝘯 𝘴𝘩𝘰𝘶𝘭𝘥 𝘺𝘰𝘶 𝘢𝘷𝘰𝘪𝘥 𝘶𝘴𝘪𝘯𝘨 #𝘒𝘕𝘕?⁣

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Machine Learning with Python

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Machine Learning with Python

The single most undervalued fact of linear algebra: matrices are graphs, and graphs are matrices.

Encoding matrices as graphs is a cheat code, making complex behavior simple to study.

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