Data Science Statistics and Machine Learning Specialization
About Course
Data Science Course: Statistics and Machine Learning Specialization – FREE!
Boost your data science career with the **Statistics and Machine Learning Specialization** from **Johns Hopkins University**, now available **completely free** on Theetay. This specialization builds on the “Data Science: Foundations using R Specialization” course, diving deeper into **statistical inference, regression models, machine learning, and data product development**.
Through five engaging courses, you’ll learn how to analyze data, build predictive models, and develop data products. This specialization is perfect for **data scientists, aspiring data scientists, and anyone interested in data analysis**. By the end, you’ll be equipped to tackle real-world data challenges and demonstrate your mastery with a certificate upon completion.
Get **free access** to this Data Science Specialization from **Johns Hopkins University** and thousands of other **top-rated online courses** from platforms like **Udemy, Udacity, Coursera, MasterClass, NearPeer,** and more, all on Theetay. Start your data science journey today! This course is a great option for anyone looking to learn **machine learning, data analysis, R programming, statistical modeling, and data product development**.
Course Content
01. statistical-inference
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0005 002_welcome-to-statistical-inference_instructions.html
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A Message from the Professor
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0006 003_some-introductory-comments_courses.git
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0008 004_pre-course-survey_instructions.html
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0010 005_syllabus_JHSPH-StudentReferencing_handbook.pdf
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0013 006_course-book-statistical-inference-for-data-science_instructions.html
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0015 007_data-science-specialization-community-site_instructions.html
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0016 008_homework-problems_hw1.html
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0021 001_probability_instructions.html
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0025 002_02-01-introduction-to-probability.mp4
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0029 003_02-02-probability-mass-functions.mp4
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0033 004_02-03-probability-density-functions.mp4
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0034 001_conditional-probability_instructions.html
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0038 002_03-01-conditional-probability.mp4
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0042 003_03-02-bayes-rule.mp4
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0046 004_03-03-independence.mp4
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0047 001_expected-values_instructions.html
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0051 002_04-01-expected-values.mp4
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0055 003_04-02-expected-values-simple-examples.mp4
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0059 004_04-03-expected-values-for-pdfs.mp4
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0060 001_practical-r-exercises-in-swirl-1_instructions.html
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0065 002_05-01-introduction-to-variability.mp4
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0069 003_05-02-variance-simulation-examples.mp4
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0073 004_05-03-standard-error-of-the-mean.mp4
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0077 005_05-04-variance-data-example.mp4
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0078 001_distributions_instructions.html
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0082 002_06-01-binomial-distrubtion.mp4
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0086 003_06-02-normal-distribution.mp4
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0090 004_06-03-poisson.mp4
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0091 001_asymptotics_instructions.html
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0095 002_07-01-asymptotics-and-lln.mp4
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0099 003_07-02-asymptotics-and-the-clt.mp4
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0103 004_07-03-asymptotics-and-confidence-intervals.mp4
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0104 001_practical-r-exercises-in-swirl-part-2_instructions.html
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0109 002_08-01-t-confidence-intervals.mp4
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0113 003_08-02-t-confidence-intervals-example.mp4
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0117 004_08-03-independent-group-t-intervals.mp4
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0121 005_08-04-a-note-on-unequal-variance.mp4
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0122 001_hypothesis-testing_instructions.html
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0126 002_09-01-hypothesis-testing.mp4
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0130 003_09-02-example-of-choosing-a-rejection-region.mp4
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0134 004_09-03-t-tests.mp4
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0138 005_09-04-two-group-testing.mp4
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0139 001_p-values_instructions.html
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0143 002_10-01-pvalues.mp4
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0147 003_10-02-pvalue-further-examples.mp4
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0148 001_knitr_instructions.html
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0151 002_just-enough-knitr-to-do-the-project.mp4
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0152 001_practical-r-exercises-in-swirl-part-3_instructions.html
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0157 002_11-01-power.mp4
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0161 003_11-02-calculating-power.mp4
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0165 004_11-03-notes-on-power.mp4
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0169 005_11-04-t-test-power.mp4
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0173 001_12-01-multiple-comparisons.mp4
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0178 002_13-01-bootstrapping.mp4
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0182 003_13-02-bootstrapping-example.mp4
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0186 004_13-03-notes-on-the-bootstrap.mp4
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0190 005_13-04-permutation-tests.mp4
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0191 001_practical-r-exercises-in-swirl-part-4_instructions.html
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Section Quiz
02. regression-models
03. practical-machine-learning
04. data-products
05. data-science-project
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