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Machine Learning r Course
Unlock the power of machine learning with our comprehensive Machine Learning R Course, designed specifically for statistics professionals. Dive into data preprocessing, mastering techniques like data splitting, feature scaling, and encoding categorical variables. Enhance your skills in data handling, exploratory data analysis, and model fine-tuning. Learn to implement algorithms such as Random Forests and Linear Regression, and evaluate models using cross-validation and metrics like R-squared. Elevate your expertise with practical, high-quality content tailored for real-world applications.
- Master data preprocessing: Split, scale, and encode data efficiently.
- Clean and handle data: Load, inspect, and manage missing values in R.
- Conduct EDA: Visualise distributions and detect outliers effectively.
- Fine-tune models: Optimise algorithms with hyperparameter tuning.
- Evaluate models: Use cross-validation and interpret performance metrics.

4 to 360 hours flexible workload
certificate recognised by the NZQA
What will I learn?
Unlock the power of machine learning with our comprehensive Machine Learning R Course, designed specifically for statistics professionals. Dive into data preprocessing, mastering techniques like data splitting, feature scaling, and encoding categorical variables. Enhance your skills in data handling, exploratory data analysis, and model fine-tuning. Learn to implement algorithms such as Random Forests and Linear Regression, and evaluate models using cross-validation and metrics like R-squared. Elevate your expertise with practical, high-quality content tailored for real-world applications.
Elevify advantages
Develop skills
- Master data preprocessing: Split, scale, and encode data efficiently.
- Clean and handle data: Load, inspect, and manage missing values in R.
- Conduct EDA: Visualise distributions and detect outliers effectively.
- Fine-tune models: Optimise algorithms with hyperparameter tuning.
- Evaluate models: Use cross-validation and interpret performance metrics.
Suggested summary
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