Python for Data Science: Complete Masterclass
About this course
"Python for Data Science: Complete Masterclass" is a comprehensive online course designed to provide you with a deep understanding of Python and its applications in data science. This course is suitable for beginners as well as advanced learners who want to enhance their knowledge and skills in Python programming for data science.Throughout the course, you will learn about the fundamental concepts of Python programming language, such as variables, data types, loops, functions, and modules. You will also learn how to use libraries and frameworks, such as NumPy, Pandas, matplotlib, and Scikit-Learn to work with data.The course covers a range of topics related to data science, including data manipulation, data analysis, data visualization, and machine learning. You will learn how to clean, preprocess, and manipulate data using Python libraries like Pandas, and how to analyze and visualize data using tools like Matplotlib and Seaborn. You will also learn how to build machine learning models using Scikit-Learn, including regression, classification, clustering, and dimensionality reduction.By the end of the course, you will have a strong understanding of Python programming language and its applications in data science. You will have gained hands-on experience working with real-world datasets, and you will be able to use Python for data analysis, visualization, and machine-learning tasks.In addition to the topics mentioned above, the "Python for Data Science: Complete Masterclass" course also covers other important data science concepts, such as data preprocessing, exploratory data analysis, hypothesis testing, and data modeling.You will learn how to preprocess data, including handling missing values, encoding categorical variables, and scaling numerical data. You will also learn how to perform exploratory data analysis to gain insights into the data and identify patterns and trends.Furthermore, the course covers hypothesis testing and statistical inference, including t-tests
69/100
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- What the provider tells you
- 45/45
- Who stands behind it
- 8/35
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- 16/20
Scores how much the provider publishes and who stands behind it — not how well it is taught.
What you'll learn
- understanding fundamental Python concepts
- manipulating and analyzing data using Pandas
- visualizing data with Matplotlib and Seaborn
- building machine learning models with Scikit-Learn
- performing exploratory data analysis and hypothesis testing
Course objectives
- to provide a comprehensive understanding of Python for data science
- to equip learners with practical skills for real-world data analysis
- to help students build and evaluate machine learning models
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