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Development Data Science

2021 Python for Data Science & Machine Learning from A-Z

Become a professional Data Scientist and learn how to use NumPy, Pandas, Seaborn, Matplotlib, Machine Learning and more!
Rating: 4.3 out of 54.3 (268 ratings)
31,710 students
Created by Juan E. Galvan, Ahmed Wael
Last updated 1/2021
English
English [Auto]
30-Day Money-Back Guarantee

What you'll learn

  • Become a professional Data Scientist, Data Engineer, Data Analyst or Consultant
  • Learn data cleaning, processing, wrangling and manipulation
  • How to create resume and land your first job as a Data Scientist
  • How to use Python for Data Science
  • How to write complex Python programs for practical industry scenarios
  • Learn Plotting in Python (graphs, charts, plots, histograms etc)
  • Learn to use NumPy for Numerical Data
  • Machine Learning and it's various practical applications
  • Supervised vs Unsupervised Machine Learning
  • Learn Regression, Classification, Clustering and Sci-kit learn
  • Machine Learning Concepts and Algorithms
  • K-Means Clustering
  • Use Python to clean, analyze, and visualize data
  • Building Custom Data Solutions
  • Statistics for Data Science
  • Probability and Hypothesis Testing

Course content

20 sections • 140 lectures • 22h 47m total length

  • Preview02:43
  • Preview06:55
  • Data Science Job Opportunities
    04:24
  • Data Science Job Roles
    10:23
  • Preview17:00
  • How To Get a Data Science Job
    18:39
  • Data Science Projects Overview
    11:52

  • Preview03:14
  • What is Data Science?
    13:24
  • What is Machine Learning?
    14:22
  • Machine Learning Concepts & Algorithms
    14:42
  • What is Deep Learning?
    09:44
  • Machine Learning vs Deep Learning
    11:09

  • What is Programming?
    06:03
  • Why Python for Data Science?
    04:35
  • What is Jupyter?
    03:54
  • What is Google Colab?
    03:27
  • Python Variables, Booleans and None
    11:47
  • Getting Started with Google Colab
    09:07
  • Python Operators
    25:26
  • Python Numbers & Booleans
    07:47
  • Python Strings
    13:12
  • Python Conditional Statements
    13:53
  • Python For Loops and While Loops
    08:07
  • Python Lists
    05:10
  • More about Lists
    15:08
  • Python Tuples
    11:25
  • Python Dictionaries
    20:19
  • Python Sets
    09:41
  • Compound Data Types & When to use each one?
    12:58
  • Python Functions
    14:23
  • Object Oriented Programming in Python
    18:47

  • Intro To Statistics
    07:11
  • Descriptive Statistics
    06:35
  • Measure of Variability
    12:19
  • Measure of Variability Continued
    09:35
  • Measures of Variable Relationship
    07:37
  • Inferential Statistics
    15:18
  • Measure of Asymmetry
    01:57
  • Sampling Distribution
    07:34

  • What Exactly is Probability?
    03:44
  • Expected Values
    02:38
  • Relative Frequency
    05:15
  • Hypothesis Testing Overview
    09:09

  • Intro NumPy Array Data Types
    12:58
  • NumPy Arrays
    08:21
  • NumPy Arrays Basics
    11:36
  • NumPy Array Indexing
    09:10
  • NumPy Array Computations
    05:53
  • Broadcasting
    04:32

  • Introduction to Pandas
    15:52
  • Introduction to Pandas Continued
    18:05

  • Data Visualization Overview
    24:49
  • Different Data Visualization Libraries in Python
    06:10
  • Python Data Visualization Implementation
    08:27

  • Introduction To Machine Learning
    26:03

  • Exploratory Data Analysis
    13:06

Requirements

  • Students should have basic computer skills
  • Students would benefit from having prior Python Experience but not necessary

Description

Learn Python for Data Science & Machine Learning from A-Z

In this practical, hands-on course you’ll learn how to program using Python for Data Science and Machine Learning. This includes data analysis, visualization, and how to make use of that data in a practical manner.

Our main objective is to give you the education not just to understand the ins and outs of the Python programming language for Data Science and Machine Learning, but also to learn exactly how to become a professional Data Scientist with Python and land your first job.

We'll go over some of the best and most important Python libraries for data science such as NumPy, Pandas, and Matplotlib +

  • NumPy —  A library that makes a variety of mathematical and statistical operations easier; it is also the basis for many features of the pandas library.

  • Pandas — A Python library created specifically to facilitate working with data, this is the bread and butter of a lot of Python data science work.

NumPy and Pandas are great for exploring and playing with data. Matplotlib is a data visualization library that makes graphs as you’d find in Excel or Google Sheets. Blending practical work with solid theoretical training, we take you from the basics of Python Programming for Data Science to mastery.

This Machine Learning with Python course dives into the basics of machine learning using Python. You'll learn about supervised vs. unsupervised learning, look into how statistical modeling relates to machine learning, and do a comparison of each.

We understand that theory is important to build a solid foundation, we understand that theory alone isn’t going to get the job done so that’s why this course is packed with practical hands-on examples that you can follow step by step. Even if you already have some coding experience, or want to learn about the advanced features of the Python programming language, this course is for you!

Python coding experience is either required or recommended in job postings for data scientists, machine learning engineers, big data engineers, IT specialists, database developers, and much more. Adding Python coding language skills to your resume will help you in any one of these data specializations requiring mastery of statistical techniques.

Together we’re going to give you the foundational education that you need to know not just on how to write code in Python, analyze and visualize data and utilize machine learning algorithms but also how to get paid for your newly developed programming skills.

The course covers 5 main areas:

1: PYTHON FOR DS+ML COURSE INTRO

This intro section gives you a full introduction to the Python for Data Science and Machine Learning course, data science industry, and marketplace, job opportunities and salaries, and the various data science job roles.

  • Intro to Data Science + Machine Learning with Python

  • Data Science Industry and Marketplace

  • Data Science Job Opportunities

  • How To Get a Data Science Job

  • Machine Learning Concepts & Algorithms

2: PYTHON DATA ANALYSIS/VISUALIZATION

This section gives you a full introduction to the Data Analysis and Data Visualization with Python with hands-on step by step training.

  • Python Crash Course

  • NumPy Data Analysis

  • Pandas Data Analysis

  • Matplotlib

  • Seaborn

  • Plotly

3: MATHEMATICS FOR DATA SCIENCE

This section gives you a full introduction to the mathematics for data science such as statistics and probability.

  • Descriptive Statistics

  • Measure of Variability

  • Inferential Statistics

  • Probability

  • Hypothesis Testing

4:  MACHINE LEARNING

This section gives you a full introduction to Machine Learning including Supervised & Unsupervised ML with hands-on step-by-step training.

  • Intro to Machine Learning

  • Data Preprocessing

  • Linear Regression

  • Logistic Regression

  • K-Nearest Neighbors

  • Decision Trees

  • Ensemble Learning

  • Support Vector Machines

  • K-Means Clustering

  • PCA

5: STARTING A DATA SCIENCE CAREER

This section gives you a full introduction to starting a career as a Data Scientist with hands-on step by step training.

  • Creating a Resume

  • Creating a Cover Letter

  • Personal Branding

  • Freelancing + Freelance websites

  • Importance of Having a Website

  • Networking

By the end of the course you’ll be a professional Data Scientist with Python and confidently apply for jobs and feel good knowing that you have the skills and knowledge to back it up.

Who this course is for:

  • Students who want to learn about Python for Data Science & Machine Learning

Instructors

Juan E. Galvan
Digital Entrepreneur | Marketer | Visionary
Juan E. Galvan
  • 4.4 Instructor Rating
  • 4,142 Reviews
  • 175,608 Students
  • 19 Courses

Hi I'm Juan. I've been an Entrepreneur since grade school. My background is in the tech space from Digital Marketing, E-commerce, Web Development to Programming. I believe in continuous education with the best of a University Degree without all the downsides of burdensome costs and inefficient methods. I look forward to helping you expand your skillsets.

Ahmed Wael
Python Instructor | ML Engineer | University TA | Freelancer
Ahmed Wael
  • 4.4 Instructor Rating
  • 1,452 Reviews
  • 62,186 Students
  • 2 Courses

Hello, I'm Ahmed Wael. I have been a developer for 5 years now in the field of Machine Learning, Deep Learning, AI, Computer Vision, and Data Visualization.

This experience is both theoretical and practical.

I have taught and mentored hundreds of students from many countries with different levels of knowledge.

Based on the feedback I got from my students, I was inspired to create courses that anyone can reach!

I really want to help students learn the most complex concepts very easily.

I am looking forward to interacting and engaging with all of you. I will be available every day to answer any of your questions and even add more materials per your request.



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