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Data Science & Machine Learning

Data Science & Machine Learning

رفتن به کانال در Telegram

The first channel on Telegram that offers exciting questions, answers, and tests in data science, artificial intelligence, machine learning, and programming languages. For promotions: @love_data

نمایش بیشتر

📈 تحلیل کانال تلگرام Data Science & Machine Learning

کانال Data Science & Machine Learning (@datascienceinterviews) در بخش زبانی انگلیسی بازیگری فعال است. در حال حاضر جامعه شامل 27 229 مشترک است و جایگاه 7 209 را در دسته آموزش و رتبه 16 024 را در منطقه الهند دارد.

📊 شاخص‌های مخاطب و پویایی

از زمان ایجاد در невідомо، پروژه رشد سریعی داشته و 27 229 مشترک جذب کرده است.

بر اساس آخرین داده‌ها در تاریخ 10 ژوئن, 2026، کانال فعالیت پایداری دارد. در ۳۰ روز گذشته تغییر اعضا برابر 103 و در ۲۴ ساعت گذشته برابر 7 بوده و همچنان دسترسی گسترده‌ای حفظ شده است.

  • وضعیت تأیید: تأیید نشده
  • نرخ تعامل (ER): میانگین تعامل مخاطب 0.78% است و در ۲۴ ساعت نخست پس از انتشار، محتوا معمولاً 0.62% واکنش نسبت به کل مشترکان کسب می‌کند.
  • دسترسی پست‌ها: هر پست به طور میانگین 212 بازدید دریافت می‌کند. در اولین روز معمولاً 170 بازدید جمع‌آوری می‌شود.
  • واکنش‌ها و تعامل: مخاطبان به‌طور فعال حمایت می‌کنند؛ میانگین واکنش به هر پست 1 است.
  • علایق موضوعی: محتوا بر موضوعات کلیدی مانند insidead, mining, pinix, learning, neo تمرکز دارد.

📝 توضیح و سیاست محتوایی

نویسنده این فضا را محل بیان دیدگاه‌های شخصی توصیف می‌کند:
The first channel on Telegram that offers exciting questions, answers, and tests in data science, artificial intelligence, machine learning, and programming languages. For promotions: @love_data

به لطف به‌روزرسانی‌های پرتکرار (آخرین داده در تاریخ 11 ژوئن, 2026)، کانال همواره به‌روز و دارای دسترسی بالاست. تحلیل‌ها نشان می‌دهد مخاطبان به‌طور فعال با محتوا تعامل دارند و آن را به نقطه اثرگذاری مهم در دسته آموزش تبدیل کرده‌اند.

27 229
مشترکین
+724 ساعت
+127 روز
+10330 روز
آرشیو پست ها
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🎯 🤖 DATA SCIENCE MOCK INTERVIEW (WITH ANSWERS) 🧠 1️⃣ Tell me about yourself ✅ Sample Answer: "I have 3+ years as a data scientist working with Python, ML models, and big data. Core skills: Pandas, Scikit-learn, SQL, and statistical modeling. Recently built churn prediction models boosting retention by 15%. Love turning complex data into actionable business strategies." 📊 2️⃣ What is the difference between supervised and unsupervised learning? ✅ Answer: Supervised: Uses labeled data for predictions (classification/regression). Unsupervised: Finds patterns in unlabeled data (clustering/dimensionality reduction). Example: Random Forest (supervised) vs K-means (unsupervised). 🔗 3️⃣ What is overfitting and how do you fix it? ✅ Answer: Overfitting: Model memorizes training data, fails on new data. Fix: Cross-validation, regularization (L1/L2), early stopping, dropout. 👉 Check train vs test performance gap. 🧠 4️⃣ How do you handle imbalanced datasets? ✅ Answer: SMOTE oversampling, undersampling, class weights, ensemble methods. Example: Fraud detection (99% normal transactions). 👉 Always validate with proper metrics (AUC, F1). 📈 5️⃣ What are window functions in SQL? ✅ Answer: Calculate across row sets without collapsing rows (ROW_NUMBER(), RANK(), LAG()). Example: RANK() OVER(ORDER BY salary DESC) for employee ranking. 📊 6️⃣ What is the bias-variance tradeoff? ✅ Answer: High bias = underfitting (simple model). High variance = overfitting (complex model). Goal: Balance for optimal generalization error. 👉 Use learning curves to diagnose. 📉 7️⃣ What is the difference between bagging and boosting? ✅ Answer: Bagging: Parallel models (Random Forest), reduces variance. Boosting: Sequential models (XGBoost), reduces bias by focusing on errors. 📊 8️⃣ What is a confusion matrix? Give an example ✅ Answer: Table: True Positives, False Positives, True Negatives, False Negatives. Key metrics: Precision, Recall, F1-score, Accuracy. Example: Medical diagnosis model evaluation. 🧠 9️⃣ How would you find the 2nd highest salary in SQL? ✅ Answer: SELECT MAX(salary) FROM employees WHERE salary < (SELECT MAX(salary) FROM employees); 📊 🔟 Explain one of your machine learning projects ✅ Strong Answer: "Built customer churn prediction using XGBoost on telco data. Engineered 20+ features, handled class imbalance with SMOTE, achieved 88% AUC-ROC. Deployed via Flask API, reduced churn 18%." 🔥 1️⃣1️⃣ What is feature engineering? ✅ Answer: Creating/transforming variables to improve model performance. Examples: Binning continuous vars, interaction terms, polynomial features, embeddings. 👉 Often > algorithm choice impact. 📊 1️⃣2️⃣ What is cross-validation and why use it? ✅ Answer: K-fold CV: Split data K times, train/test each fold, average results. Prevents overfitting, gives robust performance estimate. Example: 5-fold CV standard practice. 🧠 1️⃣3️⃣ What is gradient descent? ✅ Answer: Optimization algorithm minimizing loss function by iterative weight updates. Types: Batch, Stochastic, Mini-batch. Learning rate critical. 📈 1️⃣4️⃣ How do you explain machine learning to business stakeholders? ✅ Answer: "Use analogies: 'Model = weather forecast. Features = clouds/temperature. Prediction = rain probability.' Focus business impact over technical details." 📊 1️⃣5️⃣ What tools and technologies have you worked with? ✅ Answer: Python (Pandas, NumPy, Scikit-learn, XGBoost), SQL, Git, Docker, AWS/GCP, Jupyter, Tableau. 💼 1️⃣6️⃣ Tell me about a challenging project you worked on ✅ Answer: "Production model drifted after 3 months. Retrained with concept drift detection, added online learning pipeline. Reduced prediction error 25%, maintained 90%+ accuracy." Double Tap ❤️ For More

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GitHub Profile Tips for Data Scientists 🧠📊 Your GitHub = your portfolio. Make it show skills, tools, and thinking. 1️⃣ Profile README • Who you are & what you work on • Mention tools (Python, Pandas, SQL, Scikit-learn, Power BI) • Add project links & contact info ✅ Example: “Aspiring Data Scientist skilled in Python, ML & visualization. Love solving business problems with data.” 2️⃣ Highlight 3–6 Strong Projects Each repo must have: • Clear README: – What problem you solved – Dataset used – Key steps (EDA → Model → Results) – Tools & libraries • Jupyter notebooks (cleaned + explained) • Charts & results with conclusions ✅ Tip: Include PDF/report or dashboard screenshots 3️⃣ Project Ideas to Include • Sales insights dashboard (Power BI or Tableau) • ML model (churn, fraud, sentiment) • NLP app (text summarizer, topic model) • EDA project on Kaggle dataset • SQL project with queries & joins 4️⃣ Show Real Workflows • Use .py scripts + .ipynb notebooks • Add data cleaning + preprocessing steps • Track experiments (metrics, models tried) 5️⃣ Regular Commits • Update notebooks • Push improvements • Show learning progress over time 📌 Practice Task: Pick 1 project → Write full README → Push to GitHub today 💬 Tap ❤️ for more!

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