Data Analytics
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Dive into the world of Data Analytics โ€“ uncover insights, explore trends, and master data-driven decision making.

Admin: @HusseinSheikho || @Hussein_Sheikho
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Data Science Roadmap.pdf
15.5 MB
๐Ÿท Comprehensive Data Science Roadmap Notes

โœ… This roadmap is exactly the secret recipe you need to get out of confusion and know how to step-by-step prepare yourself for the job market.

๐Ÿ•ก From mastering Python and SQL to cleaning data and working with cloud tools, which are prerequisites for any project.

๐Ÿ•‘ How to extract real analysis reports and strategies from raw data using statistics and visualization tools.

๐Ÿ•— You will learn everything from machine learning and advanced algorithms to precise model evaluation.

๐Ÿ•™ Get familiar with neural networks, generative artificial intelligence, and language models to have a voice in today's modern world.

๐Ÿ•ง How to build real projects and portfolios that are exactly what hiring managers and big companies are looking for.

๐ŸŒ #DataScience #DataScience #pytorch #python #Roadmap

https://t.me/CodeProgrammer
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๐ŸŽฏ 2026 IT Certification Prep Kit โ€“ Free!

๐Ÿ”ฅWhether you're preparing for #Python, #Cisco, #PMI, #Fortinet, #AWS, #Azure, #AI, #Excel, #comptia, #ITIL, #cloud or any other in-demand certification โ€“ SPOTO has got you covered!

โœ… Whatโ€™s Inside:
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๐Ÿ‘‰ Become Part of Our IT Learning Circle! resources and support:
https://chat.whatsapp.com/FlG2rOYVySLEHLKXF3nKGB

๐Ÿ’ฌ Want exam help? Chat with an admin now!
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Pandas vs. Polars: A Complete Comparison of Syntax, Speed, and Memory

Need help choosing the right #Python dataframe library? This article compares #Pandas and #Polars to help you decide.

If you've been working with data in Python, you've almost certainly used pandas. It's been the go-to library for data manipulation for over a decade. But recently, Polars has been gaining serious traction. Polars promises to be faster, more memory-efficient, and more intuitive than pandas. But is it worth learning? And how different is it really?

In this article, we'll compare pandas and Polars side-by-side. You'll see performance benchmarks, and learn the syntax differences. By the end, you'll be able to make an informed decision for your next data project.

Read: https://www.kdnuggets.com/pandas-vs-polars-a-complete-comparison-of-syntax-speed-and-memory

https://t.me/CodeProgrammer ๐ŸŒบ
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๐Ÿ—‚ 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.

โžก๏ธ Link to the course

tags: #Python #DataScience #DeepLearning #AI
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โฐLast Chance โ€“ Get It Before Itโ€™s Gone!
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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!

Hereโ€™s what youโ€™ll learn:

๐Ÿ”˜ Linear Regression - The foundation of predictive modeling

๐Ÿ”˜ Logistic Regression - Predicting probabilities and classifications

๐Ÿ”˜ Clustering (K-Means, Hierarchical) - Making sense of unstructured data

๐Ÿ”˜ Overfitting vs. Underfitting - The balancing act every ML engineer must master

๐Ÿ”˜ OLS, R-squared, F-test - Key metrics to evaluate your models

https://t.me/CodeProgrammer || Share ๐ŸŒ and Like ๐Ÿ‘
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๐Ÿ”ฅ2026 New IT Certification Prep Kit โ€“ Free!

SPOTO cover: #Python #AI #Cisco #PMI #Fortinet #AWS #Azure #Excel #CompTIA #ITIL #Cloud + more

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โœ… Join our IT community: get free study materials, exam tips & peer support
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๐Ÿ’ก Level Up Your IT Career in 2026 โ€“ For FREE

Areas covered: #Python #AI #Cisco #PMP #Fortinet #AWS #Azure #Excel #CompTIA #ITIL #Cloud + more

๐Ÿ”— Download each free resource here:
โ€ข Free Courses (Python, Excel, Cyber Security, Cisco, SQL, ITIL, PMP, AWS)
๐Ÿ‘‰https://bit.ly/4ejSFbz

โ€ข IT Certs E-book
๐Ÿ‘‰ https://bit.ly/42y8owh

โ€ข IT Exams Skill Test
๐Ÿ‘‰ https://bit.ly/42kp7Dv

โ€ข Free AI Materials & Support Tools
๐Ÿ‘‰ https://bit.ly/3QEfWek

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๐Ÿ“ฒ Need exam help? Contact admin: wa.link/40f942

๐Ÿ’ฌ Join our study group (free tips & support): https://chat.whatsapp.com/K3n7OYEXgT1CHGylN6fM5a
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I found the BEST video explaining how LLMs work ๐Ÿ‘‡

๐Ÿ”— check out the full video here : https://lnkd.in/dvjZS89d

#LLM #ML #AI #Python

By: https://t.me/DataAnalyticsX
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LLM Interview Questions.pdf
71.2 KB
๐Ÿ”– 50 interview questions for LLM

A good warm-up before the interview: 50 questions on Large Language Models in one document. Not in-depth, but as a checklist to test your knowledge โ€” just perfect.

tags: #LLM #ML #python #pytorch

โžก https://t.me/DataAnalyticsX
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Aโ€“ZDictionaryofData.pdf
1008.6 KB
Data is everywhere. Clarity is rare.โฃ
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Behind every dashboard, SQL query, or machine learning model lies a common challenge โ€” understanding the language of data.โฃ
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The ๐€โ€“๐™ ๐ƒ๐ข๐œ๐ญ๐ข๐จ๐ง๐š๐ซ๐ฒ ๐จ๐Ÿ ๐ƒ๐š๐ญ๐š ๐€๐ง๐š๐ฅ๐ฒ๐ญ๐ข๐œ๐ฌ & ๐๐ฎ๐ฌ๐ข๐ง๐ž๐ฌ๐ฌ ๐ˆ๐ง๐ญ๐ž๐ฅ๐ฅ๐ข๐ ๐ž๐ง๐œ๐ž brings together 500+ essential terms across SQL, Python, Power BI, Excel, Statistics, and Machine Learning in one structured reference. โฃ
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This is the layer many professionals underestimate.โฃ
Not tools. Not dashboards.โฃ
But the ability to understand, interpret, and communicate concepts with precision.โฃ
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๐–๐ก๐š๐ญ ๐ฆ๐š๐ค๐ž๐ฌ ๐ญ๐ก๐ข๐ฌ ๐ฏ๐š๐ฅ๐ฎ๐š๐›๐ฅ๐ž:โฃ
- Clear definitions without unnecessary complexityโฃ
- Concepts connected across tools and domainsโฃ
- Coverage from foundational terms to advanced analytics conceptsโฃ
- Useful for both technical execution and business communicationโฃ
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๐–๐ก๐ž๐ซ๐ž ๐ญ๐ก๐ข๐ฌ ๐›๐ž๐œ๐จ๐ฆ๐ž๐ฌ ๐ข๐ฆ๐ฉ๐š๐œ๐ญ๐Ÿ๐ฎ๐ฅ:โฃ
- During interviews, when explaining concepts matters more than just knowing themโฃ
- In projects, where misinterpreting a term can lead to incorrect insightsโฃ
- In stakeholder discussions, where clarity builds credibilityโฃ
- In learning journeys, where structured understanding accelerates growthโฃ
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๐’๐ญ๐ซ๐จ๐ง๐  ๐๐š๐ญ๐š ๐ฉ๐ซ๐จ๐Ÿ๐ž๐ฌ๐ฌ๐ข๐จ๐ง๐š๐ฅ๐ฌ ๐๐จ๐งโ€™๐ญ ๐ฃ๐ฎ๐ฌ๐ญ ๐ฐ๐จ๐ซ๐ค ๐ฐ๐ข๐ญ๐ก ๐๐š๐ญ๐š. ๐“๐ก๐ž๐ฒ ๐ฌ๐ฉ๐ž๐š๐ค ๐ข๐ญ๐ฌ ๐ฅ๐š๐ง๐ ๐ฎ๐š๐ ๐ž ๐ฐ๐ข๐ญ๐ก ๐œ๐จ๐ง๐Ÿ๐ข๐๐ž๐ง๐œ๐ž.โฃ
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#DataAnalytics #BusinessIntelligence #DataScience #SQL #Python #PowerBI #Excel #MachineLearning #Statistics #DataEngineering #AnalyticsCareer #DataLearning #DataProfessionals #CareerGrowth #InterviewPreparation

https://t.me/DataAnalyticsX
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Forwarded from Machine Learning
๐Ÿ”– 10 Stanford courses on AI and ML โ€” with official pages and all materials

โ–ถ๏ธ CS221: Artificial Intelligence
โ–ถ๏ธ CS229: Machine Learning
โ–ถ๏ธ CS229M: Theory of Machine Learning
โ–ถ๏ธ CS230: Deep Learning
โ–ถ๏ธ CS234: Reinforcement Learning
โ–ถ๏ธ CS224N: Natural Language Processing
โ–ถ๏ธ CS231N: Deep Learning for Computer Vision
โ–ถ๏ธ CME295: Large Language Models
โ–ถ๏ธ CS236: Deep Generative Models
โ–ถ๏ธ CS336: Modeling Language from Scratch

They cover the entire spectrum: classic ML, LLM, and generative models โ€” with theory and practice.

tags: #python #ML #LLM #AI

โžก https://t.me/MachineLearning9
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AI for Data Processing and Analytics ๐Ÿค–๐Ÿ“Š

Hex โ€” a platform that helps analyze data through SQL and Python, automating most routine tasks ๐Ÿš€๐Ÿ’ป

What it can do: โœจ๐Ÿ› 
โ€ข generate SQL queries and Python code ๐Ÿ’พ๐Ÿงฉ
โ€ข build charts and dashboards ๐Ÿ“ˆ๐Ÿ“‰
โ€ข explain results and answer questions in simple language ๐Ÿ—ฃ๐Ÿง 
โ€ข allow you to quickly create a report or a data app ๐Ÿ“๐Ÿ“ฑ

Link: https://hex.tech/ ๐Ÿ”—๐ŸŒ

#DataAnalytics #HexTech #SQL #Python #Automation #DataScience

https://t.me/DataAnalyticsX โœˆ๏ธ
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Cheat sheet for working with data in Python (Data Science) ๐Ÿ๐Ÿ“Š

๐Ÿ”น importing NumPy and pandas libraries โ€” basic tools for data processing ๐Ÿ› ๏ธ

๐Ÿ”น text files โ€” reading/writing plain text and working via context manager ๐Ÿ“„

๐Ÿ”น tabular CSV/flat files โ€” loading and processing structured data into DataFrame ๐Ÿ“Š

๐Ÿ”น Excel files โ€” working with sheets and tables ๐Ÿ“‘

๐Ÿ”น SAS/Stata files โ€” importing statistical formats ๐Ÿ“‰

๐Ÿ”น HDF5 and Pickle โ€” saving and loading complex data structures ๐Ÿ’พ

๐Ÿ”น MATLAB files โ€” reading .mat via SciPy ๐Ÿงฎ

๐Ÿ”น relational databases (SQL) โ€” connecting, querying, and converting results into DataFrame ๐Ÿ—„๏ธ

๐Ÿ”น Python dictionaries โ€” accessing keys, values, and nested structures ๐Ÿ”‘

๐Ÿ”น data exploration (NumPy arrays and pandas DataFrames) โ€” viewing types, sizes, and basic statistics ๐Ÿ”

๐Ÿ”น file system navigation โ€” magic commands and os module for working with files and directories ๐Ÿ“‚

#Python #DataScience #Coding #Programming #Tech #Learning

https://t.me/DataAnalyticsX โœ…
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โšก๏ธ Machine Learning Roadmap 2026: a large map for entering ML without fairy tales about "neural networks in a month" ๐Ÿค–

A large Russian-language roadmap for machine learning: from the first import of numpy to LLM, RAG, fine-tuning, AI agents, and MLOps, and even Vue coding. ๐Ÿš€

Inside, there's a normal structure: what to learn, in what order, why it's needed, and what should be achieved in practice after each stage. ๐Ÿง 

The roadmap is divided into 7 tracks: ๐Ÿ“Š

1. Foundation: Python, mathematics, statistics, tools ๐Ÿ—๏ธ
2. Classic ML: scikit-learn, tabular data, metrics, validation ๐Ÿ“ˆ
3. Deep Learning: PyTorch, CNN, RNN, training loop ๐Ÿง 
4. LLM and transformers: attention, KV-cache, RAG, LoRA, agents ๐Ÿค–
5. Generative AI: images, videos, audio, multimodality ๐ŸŽจ
6. MLOps and production: Docker, Kubernetes, CI/CD, monitoring, serving โš™๏ธ
7. Specialization: CV, NLP, RecSys, RL, Safety ๐ŸŽฏ

The roadmap doesn't sell the illusion of "training a model - becoming an ML engineer". ๐Ÿšซ

In real work, a lot of time is spent on data, metrics, deployment, monitoring, reproducibility, and error analysis. Model is just part of the system. ๐Ÿ› ๏ธ

A good idea from the roadmap: LLM doesn't make a junior a senior. It accelerates someone who already understands the basics. Without the basics, a person just becomes an operator of Copilot, who can't explain why everything broke down. ๐Ÿ›‘

In terms of time, it's no fairy tale either: โณ

1. 0-3 months: mathematics, classic ML ๐Ÿ“š
2. 3-6 months: Deep Learning and PyTorch ๐Ÿ”ฅ
3. 6-12 months: LLM, RAG, fine-tuning, AI agents ๐Ÿค–
4. 12+ months: MLOps, production, scaling, specialization ๐Ÿš€

Here, seven large free courses on machine learning, mathematics, and Vue coding are also collected! ๐ŸŽ“

If you've long wanted to enter ML systematically, rather than jumping between videos about ChatGPT, Stable Diffusion, and "top-10 libraries", this is a good guide. ๐Ÿ—บ๏ธ

https://github.com/justxor/MachineLearningRoadmap ๐Ÿ”—

#MachineLearning #AI #DataScience #LLM #MLOps #Python
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Pandas vs Polars vs DuckDB: Which Library Should You Choose? ๐Ÿค”๐Ÿ“Š

pandas remains the default choice for notebooks, exploratory analysis, visualization, and machine learning workflows ๐Ÿ“๐Ÿ“ˆ. Polars focus on fast, memory-efficient DataFrame processing โšก๐Ÿ’พ, while DuckDB brings a SQL-first approach for querying local files and embedded analytics ๐Ÿ—„๏ธ๐Ÿ”.

Each tool fits a different kind of local data workflow ๐Ÿ› ๏ธ. In this article, we compare pandas, Polars, and DuckDB across performance, architecture, interoperability, and real-world use cases ๐Ÿ†๐Ÿ”—.

More: https://www.analyticsvidhya.com/blog/2026/05/pandas-vs-polars-vs-duckdb/ ๐Ÿ”—

#DataScience #Pandas #Polars #DuckDB #Python #Analytics
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