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Data Science & Machine Learning

Data Science & Machine Learning

Kanalga Telegramโ€™da oโ€˜tish

Join this channel to learn data science, artificial intelligence and machine learning with funny quizzes, interesting projects and amazing resources for free For collaborations: @love_data

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๐Ÿ“ˆ Telegram kanali Data Science & Machine Learning analitikasi

Data Science & Machine Learning (@datasciencefun) Ingliz til segmentidagi kanali faol ishtirokchi. Hozirda hamjamiyat 75 645 obunachidan iborat bo'lib, Taสผlim toifasida 2 114-o'rinni va Hindiston mintaqasida 4 359-o'rinni egallagan.

๐Ÿ“Š Auditoriya koโ€˜rsatkichlari va dinamika

ะฝะตะฒั–ะดะพะผะพ sanasidan buyon loyiha tez oโ€˜sib, 75 645 obunachiga ega boโ€˜ldi.

11 Iyun, 2026 dagi oxirgi maโ€™lumotlarga koโ€˜ra kanal barqaror faollikka ega. Oxirgi 30 kunda obunachilar soni 911 ga, soโ€˜nggi 24 soatda esa 29 ga oโ€˜zgardi va umumiy qamrov yuqori darajada qolmoqda.

  • Tasdiqlash holati: Tasdiqlanmagan
  • Jalb etish (ER): Auditoriya oโ€˜rtacha 3.63% darajada jalb etiladi. Nashrdan keyingi dastlabki 24 soatda kontent odatda umumiy obunachilar sonining 1.36% ini tashkil etuvchi reaksiyalarni toโ€˜playdi.
  • Post qamrovi: Har bir post oโ€˜rtacha 2 747 marta koโ€˜riladi; birinchi sutkada odatda 1 032 ta koโ€˜rish yigโ€˜iladi.
  • Reaksiyalar va oโ€˜zaro taโ€™sir: Auditoriya faol: har bir postga oโ€˜rtacha 5 ta reaksiya keladi.
  • Tematik yoโ€˜nalishlar: Kontent learning, accuracy, distribution, panda, dataset kabi asosiy mavzularga jamlangan.

๐Ÿ“ Tavsif va kontent siyosati

Muallif resursni shaxsiy fikrni ifoda etish maydoni sifatida taโ€™riflaydi:
โ€œJoin this channel to learn data science, artificial intelligence and machine learning with funny quizzes, interesting projects and amazing resources for free For collaborations: @love_dataโ€

Yuqori yangilanish chastotasi (oxirgi maโ€™lumot 12 Iyun, 2026 da olingan) sababli kanal doimo dolzarb va katta qamrovli boโ€˜lib qoladi. Analitika auditoriya kontent bilan faol hamkorlik qilishini, uni Taสผlim toifasidagi muhim taโ€™sir nuqtasiga aylantirishini koโ€˜rsatadi.

75 645
Obunachilar
+2924 soatlar
+2107 kunlar
+91130 kunlar
Postlar arxiv
๐Ÿš€ ๐Ÿญ๐Ÿฌ๐Ÿฌ% ๐—™๐—ฅ๐—˜๐—˜ ๐—–๐—ฒ๐—ฟ๐˜๐—ถ๐—ณ๐—ถ๐—ฐ๐—ฎ๐˜๐—ถ๐—ผ๐—ป๐˜€ | ๐—š๐—ผ๐˜ƒ๐˜ ๐—”๐—ฝ๐—ฝ๐—ฟ๐—ผ๐˜ƒ๐—ฒ๐—ฑ๐Ÿ˜ ๐——๐—ฎ๐˜๐—ฎ ๐—”๐—ป๐—ฎ๐—น๐˜†๐˜๐—ถ๐—ฐ๐˜€ :- https://pdlink.
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Which data type represents True or False values?
Anonymous voting

Which function is used to check data type in Python?
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What will be the data type of this value? x = 10.5
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Which of the following is a valid variable name in Python?
Anonymous voting

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Today, let's start with the first topic of Data Science Roadmap: ๐Ÿš€ Python Fundamentals (Variables Data Types) ๐Ÿ This is the foundation of data science. ๐Ÿ”น 1. What is Python? Python is a simple and powerful programming language used for: โœ… Data analysis โœ… Machine learning โœ… AI โœ… Automation โœ… Web development ๐Ÿ‘‰ Data scientists use Python because itโ€™s easy and has powerful libraries. ๐Ÿ”น 2. Variables in Python Variables store data values. โœ… Syntax name = "Ajay" age = 25 salary = 50000 ๐Ÿ‘‰ No need to declare data type separately. โœ… Rules: โœ” Cannot start with numbers โ†’ โŒ 1name โœ” Case-sensitive โ†’ age โ‰  Age โœ” Use meaningful names ๐Ÿ”น 3. Basic Data Types (Very Important) โœ… 1. Integer (int) โ€” Whole numbers x = 10 โœ… 2. Float โ€” Decimal numbers price = 99.99 โœ… 3. String (str) โ€” Text name = "Data Scientist" โœ… 4. Boolean (bool) โ€” True/False is_passed = True ๐Ÿ”น 4. Check Data Type x = 10 print(type(x)) Output: <class 'int'> ๐Ÿ”น 5. Simple Practice (Must Do) Try running this: name = "Rahul" age = 23 height = 5.9 is_student = True print(name) print(age) print(type(height)) ๐ŸŽฏ Todayโ€™s Goal โœ… Understand variables โœ… Learn data types โœ… Run Python code at least once ๐Ÿ‘‰ Use: Google Colab / Jupyter Notebook / VS Code. Double Tap โ™ฅ๏ธ For More

โŒ Power BI alone wonโ€™t make you Data Analyst โŒ Power BI cannot get you a 18 LPA job offer โŒ Power BI cannot be mastered in 2 days โŒ Power BI is not just colorful dashboard โŒ Power BI is not simple โ€œdrag and dropโ€ โŒ Power BI isnโ€™t for Data Analysts only But hereโ€™s what Power BI can do: โœ”๏ธ Power BI can save your reporting time โœ”๏ธ Power BI keeps your confidential data safe โœ”๏ธ Power BI helps you say bye to Pivot Tables โœ”๏ธ Power BI makes your report easy to consume โœ”๏ธ Power BI can update your dashboard with a single click โœ”๏ธ Power BI handles heavy data without testing your patience โœ”๏ธ Power BI is the next level for people whose work depends on Excel I can go on and on, but you get the point. Wrong expectations -> Wrong results Right expectations -> Amazing results

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๐Ÿš€ Roadmap to Master Data Science in 60 Days! ๐Ÿ“Š๐Ÿค– ๐Ÿ“… Week 1โ€“2: Python & Data Handling Basics - Day 1โ€“5: Python fundamentals โ€” variables, loops, functions, lists, dictionaries - Day 6โ€“10: NumPy & Pandas โ€” arrays, data cleaning, filtering, data manipulation ๐Ÿ“… Week 3โ€“4: Data Analysis & Visualization - Day 11โ€“15: Data analysis โ€” EDA (Exploratory Data Analysis), statistics basics, data preprocessing - Day 16โ€“20: Data visualization โ€” Matplotlib, Seaborn, charts, dashboards, storytelling with data ๐Ÿ“… Week 5โ€“6: Machine Learning Fundamentals - Day 21โ€“25: ML concepts โ€” supervised vs unsupervised learning, regression, classification - Day 26โ€“30: ML algorithms โ€” Linear Regression, Logistic Regression, Decision Trees, KNN ๐Ÿ“… Week 7โ€“8: Advanced ML & Model Building - Day 31โ€“35: Model evaluation โ€” train/test split, cross-validation, accuracy, precision, recall - Day 36โ€“40: Scikit-learn, feature engineering, model tuning, clustering (K-Means) ๐Ÿ“… Week 9: SQL & Real-World Data Skills - Day 41โ€“45: SQL โ€” SELECT, WHERE, JOIN, GROUP BY, subqueries - Day 46โ€“50: Working with real datasets, Kaggle practice, data pipelines basics ๐Ÿ“… Final Days: Projects + Deployment - Day 51โ€“60: โ€“ Build 2โ€“3 projects (sales prediction, customer segmentation, recommendation system) โ€“ Create portfolio on GitHub โ€“ Learn basics of model deployment (Streamlit/Flask) โ€“ Prepare for data science interviews โญ Bonus Tip: Focus more on projects than theory โ€” companies hire for practical skills. Double Tap โ™ฅ๏ธ For Detailed Explanation of Each Topic

๐Ÿš€ Key Skills for Aspiring Tech Specialists ๐Ÿ“Š Data Analyst: - Proficiency in SQL for database querying - Advanced Excel for data manipulation - Programming with Python or R for data analysis - Statistical analysis to understand data trends - Data visualization tools like Tableau or PowerBI - Data preprocessing to clean and structure data - Exploratory data analysis techniques ๐Ÿง  Data Scientist: - Strong knowledge of Python and R for statistical analysis - Machine learning for predictive modeling - Deep understanding of mathematics and statistics - Data wrangling to prepare data for analysis - Big data platforms like Hadoop or Spark - Data visualization and communication skills - Experience with A/B testing frameworks ๐Ÿ— Data Engineer: - Expertise in SQL and NoSQL databases - Experience with data warehousing solutions - ETL (Extract, Transform, Load) process knowledge - Familiarity with big data tools (e.g., Apache Spark) - Proficient in Python, Java, or Scala - Knowledge of cloud services like AWS, GCP, or Azure - Understanding of data pipeline and workflow management tools ๐Ÿค– Machine Learning Engineer: - Proficiency in Python and libraries like scikit-learn, TensorFlow - Solid understanding of machine learning algorithms - Experience with neural networks and deep learning frameworks - Ability to implement models and fine-tune their parameters - Knowledge of software engineering best practices - Data modeling and evaluation strategies - Strong mathematical skills, particularly in linear algebra and calculus ๐Ÿง  Deep Learning Engineer: - Expertise in deep learning frameworks like TensorFlow or PyTorch - Understanding of Convolutional and Recurrent Neural Networks - Experience with GPU computing and parallel processing - Familiarity with computer vision and natural language processing - Ability to handle large datasets and train complex models - Research mindset to keep up with the latest developments in deep learning ๐Ÿคฏ AI Engineer: - Solid foundation in algorithms, logic, and mathematics - Proficiency in programming languages like Python or C++ - Experience with AI technologies including ML, neural networks, and cognitive computing - Understanding of AI model deployment and scaling - Knowledge of AI ethics and responsible AI practices - Strong problem-solving and analytical skills ๐Ÿ”Š NLP Engineer: - Background in linguistics and language models - Proficiency with NLP libraries (e.g., NLTK, spaCy) - Experience with text preprocessing and tokenization - Understanding of sentiment analysis, text classification, and named entity recognition - Familiarity with transformer models like BERT and GPT - Ability to work with large text datasets and sequential data ๐ŸŒŸ Embrace the world of data and AI, and become the architect of tomorrow's technology!

๐—™๐—ฟ๐—ผ๐—บ ๐—ญ๐—˜๐—ฅ๐—ข ๐—ฐ๐—ผ๐—ฑ๐—ถ๐—ป๐—ด โžœ ๐—๐—ผ๐—ฏ-๐—ฟ๐—ฒ๐—ฎ๐—ฑ๐˜† ๐——๐—ฒ๐˜ƒ๐—ฒ๐—น๐—ผ๐—ฝ๐—ฒ๐—ฟ โšก Full Stack Certification is all you need in 2026! Com
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4 Career Paths In Data Analytics 1) Data Analyst: Role: Data Analysts interpret data and provide actionable insights through reports and visualizations. They focus on querying databases, analyzing trends, and creating dashboards to help businesses make data-driven decisions. Skills: Proficiency in SQL, Excel, data visualization tools (like Tableau or Power BI), and a good grasp of statistics. Typical Tasks: Generating reports, creating visualizations, identifying trends and patterns, and presenting findings to stakeholders. 2)Data Scientist: Role: Data Scientists use advanced statistical techniques, machine learning algorithms, and programming to analyze and interpret complex data. They develop models to predict future trends and solve intricate problems. Skills: Strong programming skills (Python, R), knowledge of machine learning, statistical analysis, data manipulation, and data visualization. Typical Tasks: Building predictive models, performing complex data analyses, developing machine learning algorithms, and working with big data technologies. 3)Business Intelligence (BI) Analyst: Role: BI Analysts focus on leveraging data to help businesses make strategic decisions. They create and manage BI tools and systems, analyze business performance, and provide strategic recommendations. Skills: Experience with BI tools (such as Power BI, Tableau, or Qlik), strong analytical skills, and knowledge of business operations and strategy. Typical Tasks: Designing and maintaining dashboards and reports, analyzing business performance metrics, and providing insights for strategic planning. 4)Data Engineer: Role: Data Engineers build and maintain the infrastructure required for data generation, storage, and processing. They ensure that data pipelines are efficient and reliable, and they prepare data for analysis. Skills: Proficiency in programming languages (such as Python, Java, or Scala), experience with database management systems (SQL and NoSQL), and knowledge of data warehousing and ETL (Extract, Transform, Load) processes. Typical Tasks: Designing and building data pipelines, managing and optimizing databases, ensuring data quality, and collaborating with data scientists and analysts. I have curated best 80+ top-notch Data Analytics Resources ๐Ÿ‘‡๐Ÿ‘‡ https://whatsapp.com/channel/0029VaGgzAk72WTmQFERKh02 Hope this helps you ๐Ÿ˜Š

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๐Ÿš€Greetings from PVR Cloud Tech!! ๐ŸŒˆ ๐Ÿ”ฅ Do you want to become a Master in Azure Cloud Data Engineering? If you're ready to bu
๐Ÿš€Greetings from PVR Cloud Tech!! ๐ŸŒˆ ๐Ÿ”ฅ Do you want to become a Master in Azure Cloud Data Engineering? If you're ready to build in-demand skills and unlock exciting career opportunities, this is the perfect place to start! ๐Ÿ“Œ Start Date: 16th Feb 2026 โฐ Time: 08 PM โ€“ 09 PM IST | Monday ๐Ÿ”— ๐ˆ๐ง๐ญ๐ž๐ซ๐ž๐ฌ๐ญ๐ž๐ ๐ข๐ง ๐€๐ณ๐ฎ๐ซ๐ž ๐ƒ๐š๐ญ๐š ๐„๐ง๐ ๐ข๐ง๐ž๐ž๐ซ๐ข๐ง๐  ๐ฅ๐ข๐ฏ๐ž ๐ฌ๐ž๐ฌ๐ฌ๐ข๐จ๐ง๐ฌ? ๐Ÿ‘‰ Message us on WhatsApp: https://wa.me/917036058595?text=Interested_to_join_azure_data_engineering_live_sessions ๐Ÿ”น Course Content: https://drive.google.com/file/d/1QKqhRMHx2SDNDTmPAf3_54fA6LljKHm6/view ๐Ÿ“ฑ Join WhatsApp Group: https://chat.whatsapp.com/EZghn5PVmryDgJZ1TjIMRk ๐Ÿ“ฅ Register Now: https://forms.gle/gBSfKMkvgesxjNSK9 ๐Ÿ“บ WhatsApp Channel: https://www.whatsapp.com/channel/0029Vb60rGU8V0thkpbFFW2n Team PVR Cloud Tech :) +91-9346060794

SQL ๐—ข๐—ฟ๐—ฑ๐—ฒ๐—ฟ ๐—ข๐—ณ ๐—˜๐˜…๐—ฒ๐—ฐ๐˜‚๐˜๐—ถ๐—ผ๐—ป โ†“ 1 โ†’ FROM (Tables selected). 2 โ†’ WHERE (Filters applied). 3 โ†’ GROUP BY (Rows grouped). 4 โ†’ HAVING (Filter on grouped data). 5 โ†’ SELECT (Columns selected). 6 โ†’ ORDER BY (Sort the data). 7 โ†’ LIMIT (Restrict number of rows). ๐—–๐—ผ๐—บ๐—บ๐—ผ๐—ป ๐—ค๐˜‚๐—ฒ๐—ฟ๐—ถ๐—ฒ๐˜€ ๐—ง๐—ผ ๐—ฃ๐—ฟ๐—ฎ๐—ฐ๐˜๐—ถ๐—ฐ๐—ฒ โ†“ โ†ฌ Find the second-highest salary: SELECT MAX(Salary) FROM Employees WHERE Salary < (SELECT MAX(Salary) FROM Employees); โ†ฌ Find duplicate records: SELECT Name, COUNT(*) FROM Emp GROUP BY Name HAVING COUNT(*) > 1;

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