University of Colorado Boulder
Statistical Learning for Data Science Specialization
University of Colorado Boulder

Statistical Learning for Data Science Specialization

Advanced Stats for Data Science Mastery. Master knowledge and skills to communicate model choices and interpretations effectively

Osita Onyejekwe
James Bird

Instructors: Osita Onyejekwe

Included with Coursera Plus

Get in-depth knowledge of a subject

(11 reviews)

Intermediate level

Recommended experience

4 months at 9 hours a week
Flexible schedule
Earn a career credential
Share your expertise with employers
Get in-depth knowledge of a subject

(11 reviews)

Intermediate level

Recommended experience

4 months at 9 hours a week
Flexible schedule
Earn a career credential
Share your expertise with employers

What you'll learn

  • Express why Statistical Learning is important and how it can be used.

  • Explain the pros and cons of certain models in certain situations.

  • Apply many regression and classification techniques.

Overview

What’s included

Shareable certificate

Add to your LinkedIn profile

Taught in English
practice exercises

Advance your subject-matter expertise

  • Learn in-demand skills from university and industry experts
  • Master a subject or tool with hands-on projects
  • Develop a deep understanding of key concepts
  • Earn a career certificate from University of Colorado Boulder

Specialization - 3 course series

What you'll learn

  • Express why Statistical Learning is important and how it can be used.

  • Identify the strengths, weaknesses and caveats of different models and choose the most appropriate model for a given statistical problem.

  • Determine what type of data and problems require supervised vs. unsupervised techniques.

Skills you'll gain

Regression Analysis, Statistical Analysis, Applied Machine Learning, Classification And Regression Tree (CART), Data Science, Machine Learning, Statistical Machine Learning, Supervised Learning, Statistical Methods, Statistical Modeling, Predictive Modeling, Probability & Statistics, and R Programming

What you'll learn

  • Apply resampling methods in order to obtain additional information about fitted models.

  • Optimize fitting procedures to improve prediction accuracy and interpretability.

  • Identify the benefits and approach of non-linear models.

Skills you'll gain

Regression Analysis, Dimensionality Reduction, R Programming, Statistical Inference, Statistical Modeling, Sampling (Statistics), Statistical Methods, Predictive Modeling, Statistical Programming, Advanced Analytics, Statistical Machine Learning, Statistical Analysis, Data Science, and Statistics

What you'll learn

  • Describe the advantages and disadvantages of trees, and how and when to use them.

  • Apply SVMs for binary classification or K > 2 classes.

  • Analyze the strengths and weaknesses of neural networks compared to other machine learning algorithms, such as SVMs.

Skills you'll gain

Classification And Regression Tree (CART), Artificial Neural Networks, Machine Learning, Statistics, Decision Tree Learning, Applied Machine Learning, Dimensionality Reduction, Supervised Learning, Predictive Modeling, Data Science, Random Forest Algorithm, and Unsupervised Learning

Earn a career certificate

Add this credential to your LinkedIn profile, resume, or CV. Share it on social media and in your performance review.

Build toward a degree

This Specialization is part of the following degree program(s) offered by University of Colorado Boulder. If you are admitted and enroll, your completed coursework may count toward your degree learning and your progress can transfer with you.¹

 

Instructors

Osita Onyejekwe
University of Colorado Boulder
5 Courses3,342 learners
James Bird
University of Colorado Boulder
3 Courses16,366 learners

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