Use the R Programming Language to execute data science projects and become a data scientist.
Use the R Programming Language to execute data science projects and become a data scientist. Implement business solutions, using machine learning and predictive analytics.
The R language provides a way to tackle day-to-day data science tasks, and this course will teach you how to apply the R programming language and useful statistical techniques to everyday business situations.
With this course, you'll be able to use the visualizations, statistical models, and data manipulation tools that modern data scientists rely upon daily to recognize trends and suggest courses of action.
Understand Data Science to Be a Me Effective Data Analyst
●Use R and RStudio
●Master Modeling and Machine Learning
●Load, Visualize, and Interpret Data
Use R to Analyze Data and Come Up with Valuable Business Solutions
This course is designed f those who are analytically minded and are familiar with basic statistics and programming scripting. Some familiarity with R is strongly recommended; otherwise, you can learn R as you go.
You'll learn applied predictive modeling methods, as well as how to exple and visualize data, how to use and understand common machine learning algithms in R, and how to relate machine learning methods to business problems.
All of these skills will combine to give you the ability to exple data, ask the right questions, execute predictive models, and communicate your infmed recommendations and solutions to company leaders.
Contents and Overview
This course begins with a walk-through of a template data science project befe diving into the R statistical programming language.
You will be guided through modeling and machine learning. You'll use machine learning methods to create algithms f a business, and you'll validate and evaluate models.
You'll learn how to load data into R and learn how to interpret and visualize the data while dealing with variables and missing values. You'll be taught how to come to sound conclusions about your data, despite some real-wld challenges.
By the end of this course, you'll be a better data analyst because you'll have an understanding of applied predictive modeling methods, and you'll know how to use existing machine learning methods in R. This will allow you to wk with team members in a data science project, find problems, and come up solutions.
You'll complete this course with the confidence to crectly analyze data from a variety of sources, while sharing conclusions that will make a business me competitive and successful.
The course will teach students how to use existing machine learning methods in R, but will not teach them how to implement these algithms from scratch. Students should be familiar with basic statistics and basic scripting/programming.
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