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Machine Learning with Python

Machine Learning with Python

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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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πŸ“ˆ Analytical overview of Telegram channel Machine Learning with Python

Channel Machine Learning with Python (@codeprogrammer) in the English language segment is an active participant. Currently, the community unites 67 838 subscribers, ranking 2 407 in the Education category and 5 078 in the India region.

πŸ“Š Audience metrics and dynamics

Since its creation on Π½Π΅Π²Ρ–Π΄ΠΎΠΌΠΎ, the project has demonstrated rapid growth, gathering an audience of 67 838 subscribers.

According to the latest data from 04 June, 2026, the channel demonstrates stable activity. Although there has been a change in the number of participants by 75 over the last 30 days and by 11 over the last 24 hours, overall reach remains high.

  • Verification status: Not verified
  • Engagement rate (ER): The average audience engagement rate is 2.53%. Within the first 24 hours after publication, content typically collects 1.84% reactions from the total number of subscribers.
  • Post reach: On average, each post receives 1 717 views. Within the first day, a publication typically gains 1 249 views.
  • Reactions and interaction: The audience actively supports content: the average number of reactions per post is 6.
  • Thematic interests: Content is focused on key topics such as insidead, learning, degree, evaluation, algorithm.

πŸ“ Description and content policy

The author describes the resource as a platform for expressing subjective opinions:
β€œLearn Machine Learning with hands-on Python tutorials, real-world code examples, and clear explanations for researchers and developers. Admin: @HusseinSheikho || @Hussein_Sheikho”

Thanks to the high frequency of updates (latest data received on 05 June, 2026), the channel maintains relevance and a high level of publication reach. Analytics show that the audience actively interacts with content, making it an important point of influence in the Education category.

67 838
Subscribers
+1124 hours
+587 days
+7530 days
Posts Archive
βœ”οΈ 10 Books to Understand How Large Language Models Function (2026) 1. Deep Learning https://deeplearningbook.org The definitive reference for neural networks, covering backpropagation, architectures, and foundational concepts. 2. Artificial Intelligence: A Modern Approach https://aima.cs.berkeley.edu A fundamental perspective on artificial intelligence as a comprehensive system. 3. Speech and Language Processing https://web.stanford.edu/~jurafsky/slp3/ An in-depth examination of natural language processing, transformers, and linguistics. 4. Machine Learning: A Probabilistic Perspective https://probml.github.io/pml-book/ An exploration of probabilities, statistics, and the theoretical foundations of machine learning. 5. Understanding Deep Learning https://udlbook.github.io/udlbook/ A contemporary explanation of deep learning principles with strong intuitive insights. 6. Designing Machine Learning Systems https://oreilly.com/library/view/designing-machine-learning/9781098107956/ Strategies for deploying models into production environments. 7. Generative Deep Learning https://github.com/3p5ilon/ML-books/blob/main/generative-deep-learning-teaching-machines-to-paint-write-compose-and-play.pdf Practical applications of generative models and transformer architectures. 8. Natural Language Processing with Transformers https://dokumen.pub/natural-language-processing-with-transformers-revised-edition-1098136799-9781098136796-9781098103248.html Methodologies for constructing natural language processing systems based on transformers. 9. Machine Learning Engineering https://mlebook.com Principles of machine learning engineering and operational deployment. 10. The Hundred-Page Machine Learning Book https://themlbook.com A highly concentrated foundational overview without extraneous detail. πŸ“šπŸ€–

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πŸš€ Sber has released two open-source MoE models: GigaChat-3.1 Ultra and Lightning Both code and weights are available under t
πŸš€ Sber has released two open-source MoE models: GigaChat-3.1 Ultra and Lightning Both code and weights are available under the MIT license on HuggingFace. πŸ‘‰ Key details: β€’ Trained from scratch (not a finetune) on proprietary data and infrastructure β€’ Mixture-of-Experts (MoE) architecture Models: 🧠 GigaChat-3.1 Ultra β€’ 702B MoE model for high-performance environments β€’ Outperforms DeepSeek-V3-0324 and Qwen3-235B on math and reasoning benchmarks β€’ Supports FP8 training and MTP ⚑️ GigaChat-3.1 Lightning β€’ 10B model (1.8B active parameters) β€’ Outperforms Qwen3-4B and Gemma-3-4B on Sber benchmarks β€’ Efficient local inference β€’ Up to 256k context Engineering highlights: β€’ Custom metric to detect and reduce generation loops β€’ DPO training moved to native FP8 β€’ Improvements in post-training pipeline β€’ Identified and fixed a critical issue affecting evaluation quality 🌍 Trained on 14 languages (optimized for English and Russian) Use cases: β€’ chatbots β€’ AI assistants β€’ copilots β€’ internal ML systems Sber provides a solid open foundation for developers to build production-ready AI systems with lower infrastructure costs.

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πŸš€ Master Data Science & Programming! Unlock your potential with this curated list of Telegram channels. Whether you need boo
πŸš€ Master Data Science & Programming! Unlock your potential with this curated list of Telegram channels. Whether you need books, datasets, interview prep, or project ideas, we have the perfect resource for you. Join the community today! πŸ”° Machine Learning with Python Learn Machine Learning with hands-on Python tutorials, real-world code examples, and clear explanations for researchers and developers. https://t.me/CodeProgrammer πŸ”– Machine Learning Machine learning insights, practical tutorials, and clear explanations for beginners and aspiring data scientists. Follow the channel for models, algorithms, coding guides, and real-world ML applications. https://t.me/DataScienceM 🧠 Code With Python This channel delivers clear, practical content for developers, covering Python, Django, Data Structures, Algorithms, and DSA – perfect for learning, coding, and mastering key programming skills. https://t.me/DataScience4 🎯 PyData Careers | Quiz Python Data Science jobs, interview tips, and career insights for aspiring professionals. https://t.me/DataScienceQ πŸ’Ύ Kaggle Data Hub Your go-to hub for Kaggle datasets – explore, analyze, and leverage data for Machine Learning and Data Science projects. https://t.me/datasets1 πŸ§‘β€πŸŽ“ Udemy Coupons | Courses The first channel in Telegram that offers free Udemy coupons https://t.me/DataScienceC πŸ˜€ ML Research Hub Advancing research in Machine Learning – practical insights, tools, and techniques for researchers. https://t.me/DataScienceT πŸ’¬ Data Science Chat An active community group for discussing data challenges and networking with peers. https://t.me/DataScience9 🐍 Python Arab| Ψ¨Ψ§ΩŠΨ«ΩˆΩ† عربي The largest Arabic-speaking group for Python developers to share knowledge and help. https://t.me/PythonArab πŸ–Š Data Science Jupyter Notebooks Explore the world of Data Science through Jupyter Notebooksβ€”insights, tutorials, and tools to boost your data journey. Code, analyze, and visualize smarter with every post. https://t.me/DataScienceN πŸ“Ί Free Online Courses | Videos Free online courses covering data science, machine learning, analytics, programming, and essential skills for learners. https://t.me/DataScienceV πŸ“ˆ Data Analytics Dive into the world of Data Analytics – uncover insights, explore trends, and master data-driven decision making. https://t.me/DataAnalyticsX 🎧 Learn Python Hub Master Python with step-by-step courses – from basics to advanced projects and practical applications. https://t.me/Python53 ⭐️ Research Papers Professional Academic Writing & Simulation Services https://t.me/DataScienceY ━━━━━━━━━━━━━━━━━━ Admin: @HusseinSheikho

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The 10 Most Valuable AI Learning Repositories on GitHub πŸ‘‡ I pulled the top 10 repos where Jupyter is the main language Filtered for the best educational resources Here's what's worth your time : 1. microsoft/generative-ai-for-beginners ⭐ 105,577 21 lessons covering the full GenAI stack From prompting basics to production deployment Built by Microsoft's AI education team πŸ”— https://lnkd.in/diW9Cca6 2. rasbt/LLMs-from-scratch ⭐ 83,714 Build GPT-like models from zero No hand-waving, pure implementation Companion to Sebastian Raschka's book πŸ”— https://lnkd.in/d3cq5diH 3. microsoft/ai-agents-for-beginners ⭐ 49,333 Complete course on agentic systems Covers planning, tools, memory, multi-agent Released 3 months ago, already essential πŸ”— https://lnkd.in/e-a2gqSv 4. microsoft/ML-For-Beginners ⭐ 83,279 12 weeks of classical ML fundamentals 26 lessons, 52 quizzes, full curriculum Still relevant despite the LLM hype πŸ”— https://lnkd.in/e7S8yDbS 5. openai/openai-cookbook ⭐ 71,106 Official OpenAI examples and guides Real production patterns, not toys Updated constantly with new features πŸ”— https://lnkd.in/dtMbuMGk 6. jackfrued/Python-100-Days ⭐ 177,958 Most-starred educational repo on GitHub 100 days from Python beginner to advanced Covers web dev, data science, automation πŸ”— https://lnkd.in/duWVtn4i 7. pathwaycom/llm-app ⭐ 54,583 Production RAG templates you can deploy Real-time data pipelines, not static demos Enterprise search with live updates πŸ”— https://lnkd.in/daUFK9Nd 8. jakevdp/PythonDataScienceHandbook ⭐ 46,574 Entire data science handbook as Jupyter notebooks NumPy, Pandas, Matplotlib, Scikit-Learn Free alternative to $60 textbook πŸ”— https://lnkd.in/db8HP7vT 9. CompVis/stable-diffusion ⭐ 72,246 Original Stable Diffusion implementation Understand how text-to-image actually works Foundation for SDXL, Midjourney competitors πŸ”— https://lnkd.in/dEya2Rb5 10. facebookresearch/segment-anything ⭐ 53,250 Meta's SAM model for computer vision Promptable segmentation in images and videos Powers modern AI video editing tools πŸ”— https://lnkd.in/dKvjk6Yb

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πŸš€ Fine-Tuning Large Language Models for Domain-Specific Tasks Fine-tuning Large Language Models is the process by which gene
πŸš€ Fine-Tuning Large Language Models for Domain-Specific Tasks Fine-tuning Large Language Models is the process by which generic LLMs are transformed into domain-specific experts. This procedure updates model weights using task-specific labeled data, rather than relying solely on prompting or retrieval mechanisms. This approach is particularly effective when language patterns remain stable and consistent outputs are required. πŸ‘‰ Core Concept A pre-trained LLM acquires general language capabilities. Fine-tuning instructs the model on how language functions within specific domains, such as healthcare, finance, legal services, or internal enterprise workflows. πŸ‘‰ Practical Implementation A customer support model is trained on thousands of instruction-response pairs. For example: Input: Refund request for a delayed shipment Output: A policy-compliant response including an apology, procedural steps, and a resolution. Following fine-tuning, the model generates consistent, policy-aligned answers with lower latency compared to Retrieval-Augmented Generation (RAG). πŸ‘‰ Significance of Parameter-Efficient Fine-Tuning Techniques such as LoRA and QLoRA train only small adapter layers while keeping the base model frozen. This methodology reduces GPU memory consumption, accelerates training, and enables the fine-tuning of large models on hardware with limited resources. πŸ‘‰ Appropriate Use Cases for Fine-Tuning - Recurring domain-specific language - Structured outputs, including classifications, summaries, or templates - Stable knowledge bases that do not undergo daily changes - Latency-sensitive systems where retrieval introduces overhead Typical Production Stack - Models: LLaMA or Mistral - Frameworks: PyTorch with Hugging Face and PEFT - Optimization: DeepSpeed or Accelerate - Deployment: FastAPI, Docker, and cloud GPUs πŸ’‘ Fine-tuning enhances accuracy, consistency, and cost efficiency when applied to suitable problems.

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Build a Large Language Model from Scratch! πŸš€ This repository provides code examples for developing, pretraining, and fine-tu
Build a Large Language Model from Scratch! πŸš€ This repository provides code examples for developing, pretraining, and fine-tuning a Large Language Model (LLM) from the ground up. It serves as the official codebase for the book "Build a Large Language Model (From Scratch)." πŸ“˜ Notebook examples are included for each chapter: Chapter 1: Understanding Large Language Models 🧠 Chapter 2: Working with Text Data πŸ“ Chapter 3: Coding Attention Mechanisms βš™οΈ Chapter 4: Implementing a GPT Model from Scratch πŸ— Chapter 5: Pretraining on Unlabeled Data πŸ“Š Chapter 6: Fine-tuning for Text Classification 🏷 Chapter 7: Fine-tuning to Follow Instructions πŸ—£ Repository: https://github.com/rasbt/LLMs-from-scratch πŸ”—

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