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Data Science & Machine Learning Resources

Data Science & Machine Learning Resources

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Join this channel to learn data science, artificial intelligence and machine learning with funny quizzes, interesting projects and amazing resources for free Admin: @love_data Buy ads: https://telega.io/c/datalemur

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๐Ÿ“ˆ Analytical overview of Telegram channel Data Science & Machine Learning Resources

Channel Data Science & Machine Learning Resources (@datalemur) in the English language segment is an active participant. Currently, the community unites 20 459 subscribers, ranking 9 834 in the Education category and 21 660 in the India region.

๐Ÿ“Š Audience metrics and dynamics

Since its creation on ะฝะตะฒั–ะดะพะผะพ, the project has demonstrated rapid growth, gathering an audience of 20 459 subscribers.

According to the latest data from 09 June, 2026, the channel demonstrates stable activity. Although there has been a change in the number of participants by 193 over the last 30 days and by 3 over the last 24 hours, overall reach remains high.

  • Verification status: Not verified
  • Engagement rate (ER): The average audience engagement rate is 3.68%. Within the first 24 hours after publication, content typically collects 0.85% reactions from the total number of subscribers.
  • Post reach: On average, each post receives 0 views. Within the first day, a publication typically gains 174 views.
  • Reactions and interaction: The audience actively supports content: the average number of reactions per post is 0.
  • Thematic interests: Content is focused on key topics such as |--, learning, insidead, database, sql.

๐Ÿ“ Description and content policy

The author describes the resource as a platform for expressing subjective opinions:
โ€œJoin this channel to learn data science, artificial intelligence and machine learning with funny quizzes, interesting projects and amazing resources for free Admin: @love_data Buy ads: https://telega.io/c/datalemurโ€

Thanks to the high frequency of updates (latest data received on 10 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.

20 459
Subscribers
+324 hours
+357 days
+19330 days
Posts Archive
Data Science Interview Questions.pdf1.42 MB

SQL vs Python Programming: Quick Comparison โœ ๐Ÿ“Œ SQL Programming โ€ข Query data from databases โ€ข Filter, join, aggregate rows Best fields โ€ข Data Analytics โ€ข Business Intelligence โ€ข Reporting and MIS โ€ข Entry-level Data Engineering Job titles โ€ข Data Analyst โ€ข Business Analyst โ€ข BI Analyst โ€ข SQL Developer Hiring reality โ€ข Asked in most analyst interviews โ€ข Used daily in analyst roles India salary range โ€ข Fresher: 4โ€“8 LPA โ€ข Mid-level: 8โ€“15 LPA Real tasks โ€ข Monthly sales report โ€ข Top customers by revenue โ€ข Duplicate removal ๐Ÿ“Œ Python Programming โ€ข Clean and analyze data โ€ข Automate workflows โ€ข Build models Where you work โ€ข Notebooks โ€ข Scripts โ€ข ML pipelines Best fields โ€ข Data Science โ€ข Machine Learning โ€ข Automation โ€ข Advanced Analytics Job titles โ€ข Data Scientist โ€ข ML Engineer โ€ข Analytics Engineer โ€ข Python Developer Hiring reality โ€ข Common in mid to senior roles โ€ข Strong demand in AI teams India salary range โ€ข Fresher: 6โ€“10 LPA โ€ข Mid-level: 12โ€“25 LPA Real tasks โ€ข Churn prediction โ€ข Report automation โ€ข File handling CSV, Excel, JSON โš”๏ธ Quick comparison โ€ข Data source SQL stays inside databases Python pulls data from anywhere โ€ข Speed SQL runs fast on large tables Python slows with raw big data โ€ข Learning SQL is beginner-friendly Python needs coding basics ๐ŸŽฏ Role-based choice โ€ข Data Analyst SQL required Python adds value โ€ข Data Scientist Python required SQL used to fetch data โ€ข Business Analyst SQL works for most roles Python helps automate work โ€ข Data Engineer SQL for pipelines Python for processing โœ… Best career move โ€ข Learn SQL first for entry โ€ข Add Python for growth โ€ข Use both in real projects Which one do you prefer? SQL ๐Ÿ‘ Python โค๏ธ Both ๐Ÿ™ None ๐Ÿ˜ฎ

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๐Ÿ“Š Data Science Roadmap ๐Ÿš€ ๐Ÿ“‚ Start Here โˆŸ๐Ÿ“‚ What is Data Science & Why It Matters? โˆŸ๐Ÿ“‚ Roles (Data Analyst, Data Scientist, ML Engineer) โˆŸ๐Ÿ“‚ Setting Up Environment (Python, Jupyter Notebook) ๐Ÿ“‚ Python for Data Science โˆŸ๐Ÿ“‚ Python Basics (Variables, Loops, Functions) โˆŸ๐Ÿ“‚ NumPy for Numerical Computing โˆŸ๐Ÿ“‚ Pandas for Data Analysis ๐Ÿ“‚ Data Cleaning & Preparation โˆŸ๐Ÿ“‚ Handling Missing Values โˆŸ๐Ÿ“‚ Data Transformation โˆŸ๐Ÿ“‚ Feature Engineering ๐Ÿ“‚ Exploratory Data Analysis (EDA) โˆŸ๐Ÿ“‚ Descriptive Statistics โˆŸ๐Ÿ“‚ Data Visualization (Matplotlib, Seaborn) โˆŸ๐Ÿ“‚ Finding Patterns & Insights ๐Ÿ“‚ Statistics & Probability โˆŸ๐Ÿ“‚ Mean, Median, Mode, Variance โˆŸ๐Ÿ“‚ Probability Basics โˆŸ๐Ÿ“‚ Hypothesis Testing ๐Ÿ“‚ Machine Learning Basics โˆŸ๐Ÿ“‚ Supervised Learning (Regression, Classification) โˆŸ๐Ÿ“‚ Unsupervised Learning (Clustering) โˆŸ๐Ÿ“‚ Model Evaluation (Accuracy, Precision, Recall) ๐Ÿ“‚ Machine Learning Algorithms โˆŸ๐Ÿ“‚ Linear Regression โˆŸ๐Ÿ“‚ Decision Trees & Random Forest โˆŸ๐Ÿ“‚ K-Means Clustering ๐Ÿ“‚ Model Building & Deployment โˆŸ๐Ÿ“‚ Train-Test Split โˆŸ๐Ÿ“‚ Cross Validation โˆŸ๐Ÿ“‚ Deploy Models (Flask / FastAPI) ๐Ÿ“‚ Big Data & Tools โˆŸ๐Ÿ“‚ SQL for Data Handling โˆŸ๐Ÿ“‚ Introduction to Big Data (Hadoop, Spark) โˆŸ๐Ÿ“‚ Version Control (Git & GitHub) ๐Ÿ“‚ Practice Projects โˆŸ๐Ÿ“Œ House Price Prediction โˆŸ๐Ÿ“Œ Customer Segmentation โˆŸ๐Ÿ“Œ Sales Forecasting Model ๐Ÿ“‚ โœ… Move to Next Level โˆŸ๐Ÿ“‚ Deep Learning (Neural Networks, TensorFlow, PyTorch) โˆŸ๐Ÿ“‚ NLP (Text Analysis, Chatbots) โˆŸ๐Ÿ“‚ MLOps & Model Optimization Data Science Resources: https://whatsapp.com/channel/0029VaxbzNFCxoAmYgiGTL3Z React "โค๏ธ" for more! ๐Ÿš€๐Ÿ“Š

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End to End ML Project
End to End ML Project

๐Ÿง  ๐Š-๐๐ž๐š๐ซ๐ž๐ฌ๐ญ ๐๐ž๐ข๐ ๐ก๐›๐จ๐ซ๐ฌ (๐Š๐๐)โฃ ๐Ÿ”น ๐–๐ก๐š๐ญ ๐ˆ ๐œ๐จ๐ฏ๐ž๐ซ๐ž๐ ๐ญ๐จ๐๐š๐ฒโฃ ๐–๐ก๐š๐ญ ๐Š๐๐ ๐ข๐ฌ ๐š๐ง๐ ๐ก๐จ๐ฐ ๐ข๐ญ ๐ฐ๐จ๐ซ๐ค๐ฌโฃ ๐ƒ๐ข๐Ÿ๐Ÿ๐ž๐ซ๐ž๐ง๐œ๐ž ๐›๐ž๐ญ๐ฐ๐ž๐ž๐ง ๐Š๐๐ ๐Ÿ๐จ๐ซ ๐‚๐ฅ๐š๐ฌ๐ฌ๐ข๐Ÿ๐ข๐œ๐š๐ญ๐ข๐จ๐ง ๐ฏ๐ฌ ๐‘๐ž๐ ๐ซ๐ž๐ฌ๐ฌ๐ข๐จ๐งโฃ ๐‘๐จ๐ฅ๐ž ๐จ๐Ÿ ๐Š (๐ก๐ฒ๐ฉ๐ž๐ซ๐ฉ๐š๐ซ๐š๐ฆ๐ž๐ญ๐ž๐ซ)โฃ ๐ƒ๐ข๐ฌ๐ญ๐š๐ง๐œ๐ž ๐ฆ๐ž๐ญ๐ซ๐ข๐œ๐ฌ: ๐„๐ฎ๐œ๐ฅ๐ข๐๐ž๐š๐ง ๐ฏ๐ฌ ๐Œ๐š๐ง๐ก๐š๐ญ๐ญ๐š๐งโฃ ๐–๐ก๐ฒ ๐Š๐๐ ๐ข๐ฌ ๐œ๐š๐ฅ๐ฅ๐ž๐ ๐š ๐ฅ๐š๐ณ๐ฒ / ๐ข๐ง๐ฌ๐ญ๐š๐ง๐œ๐ž-๐›๐š๐ฌ๐ž๐ ๐ฅ๐ž๐š๐ซ๐ง๐ž๐ซโฃ โฃ ๐ŸŽฏ ๐“๐จ๐ฉ ๐Ÿ๐ŸŽ ๐ˆ๐ง๐ญ๐ž๐ซ๐ฏ๐ข๐ž๐ฐ ๐๐ฎ๐ž๐ฌ๐ญ๐ข๐จ๐ง๐ฌ (๐Œ๐ฎ๐ฌ๐ญ-๐Š๐ง๐จ๐ฐ)โฃ โฃ 1๏ธโƒฃ ๐˜ž๐˜ฉ๐˜ข๐˜ต ๐˜ช๐˜ด ๐˜’-๐˜•๐˜ฆ๐˜ข๐˜ณ๐˜ฆ๐˜ด๐˜ต ๐˜•๐˜ฆ๐˜ช๐˜จ๐˜ฉ๐˜ฃ๐˜ฐ๐˜ณ๐˜ด (๐˜’๐˜•๐˜•)?โฃ 2๏ธโƒฃ ๐˜ž๐˜ฉ๐˜บ ๐˜ช๐˜ด ๐˜’๐˜•๐˜• ๐˜ค๐˜ข๐˜ญ๐˜ญ๐˜ฆ๐˜ฅ ๐˜ข ๐˜ญ๐˜ข๐˜ป๐˜บ ๐˜ญ๐˜ฆ๐˜ข๐˜ณ๐˜ฏ๐˜ช๐˜ฏ๐˜จ ๐˜ข๐˜ญ๐˜จ๐˜ฐ๐˜ณ๐˜ช๐˜ต๐˜ฉ๐˜ฎ?โฃ 3๏ธโƒฃ ๐˜‹๐˜ช๐˜ง๐˜ง๐˜ฆ๐˜ณ๐˜ฆ๐˜ฏ๐˜ค๐˜ฆ ๐˜ฃ๐˜ฆ๐˜ต๐˜ธ๐˜ฆ๐˜ฆ๐˜ฏ ๐˜’๐˜•๐˜• ๐˜ค๐˜ญ๐˜ข๐˜ด๐˜ด๐˜ช๐˜ง๐˜ช๐˜ค๐˜ข๐˜ต๐˜ช๐˜ฐ๐˜ฏ ๐˜ข๐˜ฏ๐˜ฅ ๐˜’๐˜•๐˜• ๐˜ณ๐˜ฆ๐˜จ๐˜ณ๐˜ฆ๐˜ด๐˜ด๐˜ช๐˜ฐ๐˜ฏ?โฃ 4๏ธโƒฃ ๐˜๐˜ฐ๐˜ธ ๐˜ฅ๐˜ฐ ๐˜บ๐˜ฐ๐˜ถ ๐˜ค๐˜ฉ๐˜ฐ๐˜ฐ๐˜ด๐˜ฆ ๐˜ต๐˜ฉ๐˜ฆ ๐˜ท๐˜ข๐˜ญ๐˜ถ๐˜ฆ ๐˜ฐ๐˜ง ๐˜’?โฃ 5๏ธโƒฃ ๐˜ž๐˜ฉ๐˜ข๐˜ต ๐˜ฉ๐˜ข๐˜ฑ๐˜ฑ๐˜ฆ๐˜ฏ๐˜ด ๐˜ธ๐˜ฉ๐˜ฆ๐˜ฏ ๐˜’ ๐˜ช๐˜ด ๐˜ต๐˜ฐ๐˜ฐ ๐˜ด๐˜ฎ๐˜ข๐˜ญ๐˜ญ ๐˜ฐ๐˜ณ ๐˜ต๐˜ฐ๐˜ฐ ๐˜ญ๐˜ข๐˜ณ๐˜จ๐˜ฆ?โฃ 6๏ธโƒฃ ๐˜ž๐˜ฉ๐˜ข๐˜ต ๐˜ฅ๐˜ช๐˜ด๐˜ต๐˜ข๐˜ฏ๐˜ค๐˜ฆ ๐˜ฎ๐˜ฆ๐˜ต๐˜ณ๐˜ช๐˜ค๐˜ด ๐˜ข๐˜ณ๐˜ฆ ๐˜ค๐˜ฐ๐˜ฎ๐˜ฎ๐˜ฐ๐˜ฏ๐˜ญ๐˜บ ๐˜ถ๐˜ด๐˜ฆ๐˜ฅ ๐˜ช๐˜ฏ ๐˜’๐˜•๐˜•?โฃ 7๏ธโƒฃ ๐˜ž๐˜ฉ๐˜บ ๐˜ฅ๐˜ฐ๐˜ฆ๐˜ด ๐˜’๐˜•๐˜• ๐˜ฑ๐˜ฆ๐˜ณ๐˜ง๐˜ฐ๐˜ณ๐˜ฎ ๐˜ฑ๐˜ฐ๐˜ฐ๐˜ณ๐˜ญ๐˜บ ๐˜ฐ๐˜ฏ ๐˜ฉ๐˜ช๐˜จ๐˜ฉ-๐˜ฅ๐˜ช๐˜ฎ๐˜ฆ๐˜ฏ๐˜ด๐˜ช๐˜ฐ๐˜ฏ๐˜ข๐˜ญ ๐˜ฅ๐˜ข๐˜ต๐˜ข?โฃ 8๏ธโƒฃ ๐˜ž๐˜ฉ๐˜ข๐˜ต ๐˜ช๐˜ด ๐˜ต๐˜ฉ๐˜ฆ ๐˜ต๐˜ช๐˜ฎ๐˜ฆ ๐˜ค๐˜ฐ๐˜ฎ๐˜ฑ๐˜ญ๐˜ฆ๐˜น๐˜ช๐˜ต๐˜บ ๐˜ฐ๐˜ง ๐˜’๐˜•๐˜•?โฃ 9๏ธโƒฃ ๐˜๐˜ฐ๐˜ธ ๐˜ฅ๐˜ฐ ๐˜’๐˜‹-๐˜›๐˜ณ๐˜ฆ๐˜ฆ ๐˜ข๐˜ฏ๐˜ฅ ๐˜‰๐˜ข๐˜ญ๐˜ญ-๐˜›๐˜ณ๐˜ฆ๐˜ฆ ๐˜ช๐˜ฎ๐˜ฑ๐˜ณ๐˜ฐ๐˜ท๐˜ฆ ๐˜’๐˜•๐˜• ๐˜ฑ๐˜ฆ๐˜ณ๐˜ง๐˜ฐ๐˜ณ๐˜ฎ๐˜ข๐˜ฏ๐˜ค๐˜ฆ?โฃ ๐Ÿ”Ÿ ๐˜ž๐˜ฉ๐˜ฆ๐˜ฏ ๐˜ด๐˜ฉ๐˜ฐ๐˜ถ๐˜ญ๐˜ฅ ๐˜บ๐˜ฐ๐˜ถ ๐˜ข๐˜ท๐˜ฐ๐˜ช๐˜ฅ ๐˜ถ๐˜ด๐˜ช๐˜ฏ๐˜จ #๐˜’๐˜•๐˜•?โฃ

๐Ÿ”— Complete Machine Learning Handwritten Notes ๐Ÿ“

Kandinsky 5.0 Video Lite and Kandinsky 5.0 Video Pro generative models on the global text-to-video landscape ๐Ÿ”˜Pro is current
Kandinsky 5.0 Video Lite and Kandinsky 5.0 Video Pro generative models on the global text-to-video landscape ๐Ÿ”˜Pro is currently the #1 open-source model worldwide ๐Ÿ”˜Lite (2B parameters) outperforms Sora v1. ๐Ÿ”˜Only Google (Veo 3.1, Veo 3), OpenAI (Sora 2), Alibaba (Wan 2.5), and KlingAI (Kling 2.5, 2.6) outperform Pro โ€” these are objectively the strongest video generation models in production today. We are on par with Luma AI (Ray 3) and MiniMax (Hailuo 2.3): the maximum ELO gap is 3 points, with a 95% CI of ยฑ21. Useful links ๐Ÿ”˜Full leaderboard: LM Arena ๐Ÿ”˜Kandinsky 5.0 details: technical report ๐Ÿ”˜Open-source Kandinsky 5.0: GitHub and Hugging Face

Machine Learning Handwritten Notes.pdf16.99 MB

Machine Learning Fundamentals A structured Machine Learning Fundamentals guide covering core concepts, intuition, math basics, ML algorithms, deep learning, and real-world workflows. https://t.me/CodeProgrammer ๐ŸŽ€

๐Ÿ“Š A comprehensive summary of the ยซSeaborn Libraryยป ๐Ÿ‘จ๐Ÿปโ€๐Ÿ’ป One of the best choices for any data scientist to convert data into clear and beautiful charts, so that they can better understand what the data is saying and also be able to present the results correctly and clearly to others, is the Seaborn library. โœ… A very user-friendly library for creating professional charts with minimal coding. It is built on top of Matplotlib but is simpler and easier to use than that. โœ๏ธ With this summary, you will learn the syntax, see many examples and real applications of #Seaborn, and ultimately help you elevate your #datavisualization skills by several levels. ๐ŸŒ #Data_Science #DataScience https://t.me/DataAnalyticsX ๐ŸŒŸ React ๐Ÿ’– for more amazing content

๐—œ๐—ณ ๐˜†๐—ผ๐˜‚ ๐˜๐—ต๐—ถ๐—ป๐—ธ ๐—ฃ๐—ฟ๐—ผ๐—ฏ๐—ฎ๐—ฏ๐—ถ๐—น๐—ถ๐˜๐˜† ๐—ถ๐˜€ ๐—ท๐˜‚๐˜€๐˜ ๐—ฎ๐—ฏ๐—ผ๐˜‚๐˜ ๐—ฐ๐—ผ๐—ถ๐—ป ๐˜๐—ผ๐˜€๐˜€๐—ฒ๐˜€โ€ฆ Think again! ๐ŸŽฒ Hereโ€™s why itโ€™s a game-changer for anyone in data science, analytics, and decision-making: โžœ Decode Uncertainty From weather forecasts to financial markets, probability helps us make smarter choices. โžœ Master Essential Distributions Understand Binomial, Poisson, Normal, and more in the simplest way possible. โžœ Crack Data Science Interviews #Probability is a key topic in analytics and #machinelearning interviews. โžœ Avoid Common Misconceptions Learn why "50-50 odds" donโ€™t always mean a fair game. โžœ Visualize Concepts, Not Just Formulas The best way to learn is through intuitive graphs and real-world examples!

Top 10 Data Libraries for Python
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Top 10 Data Libraries for Python

Data Science & Machine Learning Resources - Statistics & analytics of Telegram channel @datalemur