Machine Learning Courses
course
Geospatial Data Science with Python
Intermediate
Acquired skills: Geospatial Data Fundamentals, Vector and Raster Data Handling, Coordinate Reference Systems, Spatial Operations, Geospatial Visualization, Spatial Joins and Overlays
course
Hyperparameter Tuning Basics with Python
Beginner
1 STUDYING NOW
Acquired skills: Hyperparameter Tuning Fundamentals, Manual Search Methods, Automated Search with scikit-learn, Bayesian Optimization, Model Evaluation and Generalization
course
Introduction to Time Series Forecasting
Intermediate
Acquired skills: Time Series Analysis, ARIMA Modeling, Forecast Evaluation Metrics, Advanced ARIMA Techniques
course
Loss Functions in Machine Learning
Intermediate
Acquired skills: Mathematical Foundations of Loss Functions, Risk Minimization Theory, Regression Loss Analysis, Classification Loss Analysis, Information-Theoretic Losses, Loss Function Selection and Comparison
course
MLOps Foundations
Beginner
Acquired skills: MLOps Fundamentals, Experiment Tracking with MLflow, Model Deployment with FastAPI and Docker, Pipeline Automation with Airflow, Model Monitoring and CI/CD
course
Optimization Methods in Machine Learning in Python
Beginner
1 STUDYING NOW
Acquired skills: Mathematical Optimization, Gradient Descent, Convex Analysis, Stochastic Optimization, Momentum Methods, Adaptive Algorithms, Convergence Theory
course
Advanced Tree-Based Models with Python
Intermediate
1 STUDYING NOW
Acquired skills: CatBoost Modeling, XGBoost Modeling, LightGBM Modeling, Model Regularization, Categorical Feature Handling, Model Interpretation, Model Blending, Deployment Best Practices
course
Applied Hypothesis Testing & A/B Testing
Beginner
Acquired skills: Hypothesis Testing, t-test and z-test Application, Chi-Square Analysis, A/B Test Design, Experimental Data Preparation, Statistical Interpretation
course
Ensemble Learning Techniques with Python
Beginner
3 STUDYING NOW
Acquired skills: Ensemble Learning Fundamentals, Bagging and Random Forests, Boosting Algorithms, Advanced Ensemble Integration
course
Explainable AI (XAI) Basics
Beginner
Acquired skills: Explainable AI Fundamentals, XAI Methods and Concepts, Ethical AI Principles, AI Transparency Awareness
course
Apache Arrow and PyArrow for Data Scientists
Advanced
Acquired skills: Columnar Data Representation, Arrow Data Model, PyArrow API Usage, Data Interoperability, Null Handling in Arrow
course
Data Cleaning Techniques in Python
Intermediate
Acquired skills: Fuzzy Matching in Python, Deduplication Algorithms, Record Linkage Techniques, Advanced Text Cleaning
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Machine Learning Courses: Key Info and Questions
1. | Introduction to Machine Learning with Python | ||
2. | Linear Regression with Python | ||
3. | Mathematics for Data Science with Python | ||
4. | Data Preprocessing and Feature Engineering with Python | ||
5. | Classification with Python |





