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Data Analytics & AI | SQL Interviews | Power BI Resources

Data Analytics & AI | SQL Interviews | Power BI Resources

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๐Ÿ”“Explore the fascinating world of Data Analytics & Artificial Intelligence ๐Ÿ’ป Best AI tools, free resources, and expert advice to land your dream tech job. Admin: @coderfun Buy ads: https://telega.io/c/Data_Visual

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๐Ÿ“ˆ Telegram kanali Data Analytics & AI | SQL Interviews | Power BI Resources analitikasi

Data Analytics & AI | SQL Interviews | Power BI Resources (@data_visual) Ingliz til segmentidagi kanali faol ishtirokchi. Hozirda hamjamiyat 27 215 obunachidan iborat bo'lib, Taสผlim toifasida 7 206-o'rinni va Hindiston mintaqasida 15 981-o'rinni egallagan.

๐Ÿ“Š Auditoriya koโ€˜rsatkichlari va dinamika

ะฝะตะฒั–ะดะพะผะพ sanasidan buyon loyiha tez oโ€˜sib, 27 215 obunachiga ega boโ€˜ldi.

14 Iyun, 2026 dagi oxirgi maโ€™lumotlarga koโ€˜ra kanal barqaror faollikka ega. Oxirgi 30 kunda obunachilar soni 255 ga, soโ€˜nggi 24 soatda esa 26 ga oโ€˜zgardi va umumiy qamrov yuqori darajada qolmoqda.

  • Tasdiqlash holati: Tasdiqlanmagan
  • Jalb etish (ER): Auditoriya oโ€˜rtacha 3.99% darajada jalb etiladi. Nashrdan keyingi dastlabki 24 soatda kontent odatda umumiy obunachilar sonining 0.72% ini tashkil etuvchi reaksiyalarni toโ€˜playdi.
  • Post qamrovi: Har bir post oโ€˜rtacha 0 marta koโ€˜riladi; birinchi sutkada odatda 197 ta koโ€˜rish yigโ€˜iladi.
  • Reaksiyalar va oโ€˜zaro taโ€™sir: Auditoriya faol: har bir postga oโ€˜rtacha 0 ta reaksiya keladi.
  • Tematik yoโ€˜nalishlar: Kontent |--, sql, learning, analytic, visualization kabi asosiy mavzularga jamlangan.

๐Ÿ“ Tavsif va kontent siyosati

Muallif resursni shaxsiy fikrni ifoda etish maydoni sifatida taโ€™riflaydi:
โ€œ๐Ÿ”“Explore the fascinating world of Data Analytics & Artificial Intelligence ๐Ÿ’ป Best AI tools, free resources, and expert advice to land your dream tech job. Admin: @coderfun Buy ads: https://telega.io/c/Data_Visualโ€

Yuqori yangilanish chastotasi (oxirgi maโ€™lumot 15 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.

27 215
Obunachilar
+2624 soatlar
+527 kunlar
+25530 kunlar
Postlar arxiv
Data Science Roadmap
Data Science Roadmap

๐…๐‘๐„๐„ ๐‚๐ž๐ซ๐ญ๐ข๐Ÿ๐ข๐œ๐š๐ญ๐ข๐จ๐ง ๐‚๐จ๐ฎ๐ซ๐ฌ๐ž๐ฌ ๐Ÿ˜ 1) Generative AI 2) Big data artificial intelligence 3 ) Microsoft Al f
๐…๐‘๐„๐„ ๐‚๐ž๐ซ๐ญ๐ข๐Ÿ๐ข๐œ๐š๐ญ๐ข๐จ๐ง ๐‚๐จ๐ฎ๐ซ๐ฌ๐ž๐ฌ ๐Ÿ˜ 1) Generative AI 2) Big data artificial intelligence 3 ) Microsoft Al for beginners 4) Prompt Engineering for Chat GPT ๐‹๐ข๐ง๐ค๐Ÿ‘‡ :-  https://pdlink.in/40Fbg9d Enroll For FREE & Get Certified๐ŸŽ“

Top 10 Python libraries commonly used by data scientists 1. NumPy: A fundamental package for scientific computing with support for large, multi-dimensional arrays and matrices, along with a collection of mathematical functions. 2. pandas: A powerful data manipulation and analysis library that provides data structures and functions for working with structured data. 3. matplotlib: A widely-used plotting library for creating a variety of visualizations, including line plots, bar charts, histograms, scatter plots, and more. 4. scikit-learn: A comprehensive machine learning library that provides tools for data mining and data analysis, including algorithms for classification, regression, clustering, and more. 5. TensorFlow: An open-source machine learning framework developed by Google for building and training machine learning models, particularly for deep learning tasks. 6. Keras: A high-level neural networks API that is built on top of TensorFlow and provides an easy-to-use interface for building and training deep learning models. 7. Seaborn: A data visualization library based on matplotlib that provides a high-level interface for creating informative and attractive statistical graphics. 8. SciPy: A library that builds on NumPy and provides a wide range of scientific and technical computing functions, including optimization, integration, interpolation, and more. 9. Statsmodels: A library that provides classes and functions for the estimation of many different statistical models, as well as conducting statistical tests and exploring data. 10. XGBoost: An optimized gradient boosting library that is widely used for supervised learning tasks, such as regression and classification. Cracking the Data Science Interview ๐Ÿ‘‡๐Ÿ‘‡ https://topmate.io/analyst/1024129 Credits: https://t.me/datasciencefun Like if you need similar content ENJOY LEARNING ๐Ÿ‘๐Ÿ‘

๐—š๐—ฒ๐˜ ๐—ฌ๐—ผ๐˜‚๐—ฟ ๐——๐—ฟ๐—ฒ๐—ฎ๐—บ ๐—๐—ผ๐—ฏ ๐—œ๐—ป ๐—”๐—บ๐—ฎ๐˜‡๐—ผ๐—ป, ๐—š๐—ผ๐—ผ๐—ด๐—น๐—ฒ, ๐— ๐—ถ๐—ฐ๐—ฟ๐—ผ๐˜€๐—ผ๐—ณ๐˜, ๐—ก๐—ฉ๐—œ๐——๐—œ๐—”, ๐—ฎ๐—ป๐—ฑ ๐— ๐—ฒ๐˜๐—ฎ (๐—™๐—ฎ๐—ฐ๏ฟฝ
๐—š๐—ฒ๐˜ ๐—ฌ๐—ผ๐˜‚๐—ฟ ๐——๐—ฟ๐—ฒ๐—ฎ๐—บ ๐—๐—ผ๐—ฏ ๐—œ๐—ป ๐—”๐—บ๐—ฎ๐˜‡๐—ผ๐—ป, ๐—š๐—ผ๐—ผ๐—ด๐—น๐—ฒ, ๐— ๐—ถ๐—ฐ๐—ฟ๐—ผ๐˜€๐—ผ๐—ณ๐˜, ๐—ก๐—ฉ๐—œ๐——๐—œ๐—”, ๐—ฎ๐—ป๐—ฑ ๐— ๐—ฒ๐˜๐—ฎ (๐—™๐—ฎ๐—ฐ๐—ฒ๐—ฏ๐—ผ๐—ผ๐—ธ) ๐˜„๐—ถ๐˜๐—ต ๐˜๐—ต๐—ฒ๐˜€๐—ฒ ๐—ฐ๐—ผ๐—บ๐—ฝ๐—ฟ๐—ฒ๐—ต๐—ฒ๐—ป๐˜€๐—ถ๐˜ƒ๐—ฒ ๐—ฟ๐—ฒ๐˜€๐—ผ๐˜‚๐—ฟ๐—ฐ๐—ฒ๐˜€๐Ÿ˜ 1๏ธโƒฃ Amazon Interviewing Guide 2๏ธโƒฃ Google Interview Tips 3๏ธโƒฃ Microsoft Hiring Tips 4๏ธโƒฃ NVIDIA Hiring Process 5๏ธโƒฃ Meta Onsite SWE Prep Guide ๐‹๐ข๐ง๐ค๐Ÿ‘‡:- https://pdlink.in/40OSJJ6 Crack Interview & Get Your Dream Job In Top MNCs

๐Ÿฑ ๐—™๐—ฅ๐—˜๐—˜ ๐— ๐—ฎ๐—ฐ๐—ต๐—ถ๐—ป๐—ฒ ๐—Ÿ๐—ฒ๐—ฎ๐—ฟ๐—ป๐—ถ๐—ป๐—ด ๐—–๐—ฒ๐—ฟ๐˜๐—ถ๐—ณ๐—ถ๐—ฐ๐—ฎ๐˜๐—ถ๐—ผ๐—ป ๐—–๐—ผ๐˜‚๐—ฟ๐˜€๐—ฒ๐˜€ ๐Ÿ˜ Ready to dive into the world of Mach
๐Ÿฑ ๐—™๐—ฅ๐—˜๐—˜ ๐— ๐—ฎ๐—ฐ๐—ต๐—ถ๐—ป๐—ฒ ๐—Ÿ๐—ฒ๐—ฎ๐—ฟ๐—ป๐—ถ๐—ป๐—ด ๐—–๐—ฒ๐—ฟ๐˜๐—ถ๐—ณ๐—ถ๐—ฐ๐—ฎ๐˜๐—ถ๐—ผ๐—ป ๐—–๐—ผ๐˜‚๐—ฟ๐˜€๐—ฒ๐˜€ ๐Ÿ˜ Ready to dive into the world of Machine Learning? Here are 5 powerful resources that will guide you every step of the wayโ€”from beginner concepts to advanced techniques. ๐‹๐ข๐ง๐ค ๐Ÿ‘‡:-  https://pdlink.in/40wyXk8 Enroll For FREE & Get Certified๐ŸŽ“

Here are some essential Python Concepts for Data Analyst
Here are some essential Python Concepts for Data Analyst

๐—ข๐—ฟ๐—ฎ๐—ฐ๐—น๐—ฒ ๐—ฆ๐—ค๐—Ÿ ๐—™๐—ฅ๐—˜๐—˜ ๐—–๐—ฒ๐—ฟ๐˜๐—ถ๐—ณ๐—ถ๐—ฐ๐—ฎ๐˜๐—ถ๐—ผ๐—ป ๐—–๐—ผ๐˜‚๐—ฟ๐˜€๐—ฒ๐Ÿ˜ Learn SQL in this FREE 12-part boot camp. It will help
๐—ข๐—ฟ๐—ฎ๐—ฐ๐—น๐—ฒ ๐—ฆ๐—ค๐—Ÿ ๐—™๐—ฅ๐—˜๐—˜ ๐—–๐—ฒ๐—ฟ๐˜๐—ถ๐—ณ๐—ถ๐—ฐ๐—ฎ๐˜๐—ถ๐—ผ๐—ป ๐—–๐—ผ๐˜‚๐—ฟ๐˜€๐—ฒ๐Ÿ˜ Learn SQL in this FREE 12-part boot camp. It will help you get started with Oracle Database and SQL. Complete the course to get your free certificate. ๐‹๐ข๐ง๐ค ๐Ÿ‘‡:-  https://pdlink.in/3P75GaB Enroll For FREE & Get Certified๐ŸŽ“

๐——๐—ฎ๐˜๐—ฎ ๐—”๐—ป๐—ฎ๐—น๐˜†๐˜๐—ถ๐—ฐ๐˜€ ๐—ช๐—™๐—› ๐—œ๐—ป๐˜๐—ฒ๐—ฟ๐—ป๐˜€๐—ต๐—ถ๐—ฝ ๐—ฃ๐—ฟ๐—ผ๐—ด๐—ฟ๐—ฎ๐—บ๐Ÿ˜ Work From Home Opportunity Company Name:- Abhyaz Role:- Data Analyst Intern Qualification:-Any graduate or engineer Joining Date :- 3rd Feb 2025 ๐€๐ฉ๐ฉ๐ฅ๐ฒ ๐‹๐ข๐ง๐ค ๐Ÿ‘‡:- https://pdlink.in/4gtQdwB Last Date To Apply :- 27/01/2025

Top 8 Highest Paid Companies with Data Analysts AVG Salary
Top 8 Highest Paid Companies with Data Analysts AVG Salary

๐—œ๐—ป๐—ณ๐—ผ๐˜€๐˜†๐˜€ ๐—™๐—ฅ๐—˜๐—˜ ๐—–๐—ฒ๐—ฟ๐˜๐—ถ๐—ณ๐—ถ๐—ฐ๐—ฎ๐˜๐—ถ๐—ผ๐—ป ๐—–๐—ผ๐˜‚๐—ฟ๐˜€๐—ฒ๐˜€๐Ÿ˜ Looking to stand out in todayโ€™s competitive job market? T
๐—œ๐—ป๐—ณ๐—ผ๐˜€๐˜†๐˜€ ๐—™๐—ฅ๐—˜๐—˜ ๐—–๐—ฒ๐—ฟ๐˜๐—ถ๐—ณ๐—ถ๐—ฐ๐—ฎ๐˜๐—ถ๐—ผ๐—ป ๐—–๐—ผ๐˜‚๐—ฟ๐˜€๐—ฒ๐˜€๐Ÿ˜ Looking to stand out in todayโ€™s competitive job market? This FREE certification series from Infosys Springboard offers everything you need to Gain industry-relevant skills. ๐‹๐ข๐ง๐ค ๐Ÿ‘‡:-  https://pdlink.in/42sZl0R Enroll For FREE & Get Certified๐ŸŽ“

๐Ÿ–ฅ The Information provides insights into the Stargate deal involving OpenAI: - Concerns about Microsoft: Sam Altman was worried that Microsoft wasn't providing enough computing capacity for OpenAI to compete effectively, especially as Elon Musk launched a data center in just 3.5 months compared to Microsoft's 18 months. - Data and Computing Expansion: Altman has been focused on enhancing OpenAI's access to data and computing power as essential for developing AGI and advancing scientific research. - Stargate's Purpose: The Stargate initiative aims to provide OpenAI with a significant amount of affordable computing power exclusively for its use. - Revenue Goals: OpenAI seeks to increase its revenue from $4 billion in 2024 to $12 billion in 2025, with a long-term goal of reaching $100 billion by 2029. Stargate members are considering the option to offer computing power to other companies if OpenAI's growth falters. - Collaboration with Oracle: After Musk opted to build his own data center, Altman partnered with Oracle and Crusoe to construct a new data center in Texas for OpenAI, significantly increasing their computing resources. - Future Expansion: Oracle has leased a 1.2 GW campus in Abilene, which will expand to 2 GW by mid-2026, with a total investment of $100 billion planned for the project. - Oracle's Position: Oracle's CEO has close ties to both Trump and Musk, providing an incentive to support OpenAI, with Oracle's shares rising 16% following the announcement. - Strategic Moves: Altman has maneuvered politically to secure support for OpenAI amid increasing influence from Musk, culminating in a White House announcement of the Stargate project shortly after Trump took office.

๐—š๐—ผ๐—ผ๐—ด๐—น๐—ฒ ๐—™๐—ฅ๐—˜๐—˜ ๐—–๐—ฒ๐—ฟ๐˜๐—ถ๐—ณ๐—ถ๐—ฐ๐—ฎ๐˜๐—ถ๐—ผ๐—ป ๐—–๐—ผ๐˜‚๐—ฟ๐˜€๐—ฒ๐˜€๐Ÿ˜ Data analytics is a must-have skill in todayโ€™s digital era,
๐—š๐—ผ๐—ผ๐—ด๐—น๐—ฒ ๐—™๐—ฅ๐—˜๐—˜ ๐—–๐—ฒ๐—ฟ๐˜๐—ถ๐—ณ๐—ถ๐—ฐ๐—ฎ๐˜๐—ถ๐—ผ๐—ป ๐—–๐—ผ๐˜‚๐—ฟ๐˜€๐—ฒ๐˜€๐Ÿ˜  Data analytics is a must-have skill in todayโ€™s digital era, and Google offers exceptional free courses to help you excel - Google Analytics Certification - Google Analytics for Power Users - Advanced Google Analytics ๐‹๐ข๐ง๐ค ๐Ÿ‘‡:-  https://pdlink.in/423LMom Enroll For FREE & Get Certified๐ŸŽ“

Here are 25 most common ML interview screening questions for each category: 1. Machine Learning fundamentals: - Explain the difference between supervised, unsupervised, and reinforcement learning. Provide an example for each. - What is the bias-variance tradeoff? How does it affect model performance? - Describe the process of cross-validation. Why is it important in model evaluation? - What is overfitting, and how can you prevent it in your models? - Explain the concept of ensemble learning. What are bagging and boosting? 2. Statistics and Probability: - Explain the difference between frequentist and Bayesian approaches in statistics. - What is the Central Limit Theorem, and why is it important in machine learning? - Describe the concept of hypothesis testing and its application in A/B testing. - What is maximum likelihood estimation? Provide an example of its use in machine learning. - Explain the difference between correlation and causation. How does this impact model interpretation? 3. Model Evaluation and Deployment: - What metrics would you use to evaluate a classification model? How do they differ for balanced vs. imbalanced datasets? - Describe the process of deploying a machine learning model in a production environment. - What is A/B testing in the context of machine learning models? How would you design an A/B test? - Explain the concept of model drift. How can it be detected and mitigated? - What are the key considerations when scaling a machine learning system to handle large amounts of data or traffic? 4. Python for Machine Learning: - How would you handle missing data in a pandas DataFrame? - Explain the difference between a list and a numpy array in Python. When would you use one over the other? - What are lambda functions in Python? Provide an example of how they can be used in data processing. - Describe the purpose of the scikit-learn library. How would you use it to implement a simple classification model? - What is the difference between *args and **kwargs in Python? How might they be useful in creating flexible ML functions? 5. Data Preprocessing: - What is feature scaling, and why is it important? Describe different methods of feature scaling. - How do you handle categorical variables in machine learning models? Explain one-hot encoding and label encoding. - What is dimensionality reduction? Describe PCA (Principal Component Analysis) and its applications. - How do you deal with imbalanced datasets? Discuss various techniques to address this issue. - What is feature selection? Describe a few methods for selecting the most important features for a model. I have curated the best interview resources to crack Data Science Interviews ๐Ÿ‘‡๐Ÿ‘‡ https://topmate.io/analyst/1024129 Like if you need similar content ๐Ÿ˜„๐Ÿ‘

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