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Data Science- Python for Data Analysis Full Bootcamp

  • Development
  • Feb 19, 2025
SynopsisData Science: Python for Data Analysis Full Bootcamp, availab...
Data Science- Python for Analysis Full Bootcamp  No.1

Data Science: Python for Data Analysis Full Bootcamp, available at $64.99, has an average rating of 4.29, with 76 lectures, 10 quizzes, based on 2075 reviews, and has 184015 subscribers.

You will learn about Code with Python Programming Language Python Functional Programming Structure Data using collection containers Object-Oriented Design Advanced Python Foundations Handling Data with Python Libraries Numerical Python Extracting and Analyzing data from different resources Data Analysis with Pandas Data Visualization using matplotlib Advanced Visualization with Seaborn Build Python solutions for data science Get Instructor QA Support and help This course is ideal for individuals who are Python beginners and newbies or Data Scientist who knows other language tools or New Python Data Analysts or Data Science Beginners or New developers and Programmers or Programmers and developers who know other programming language but are new to python or Anyone who wants to use Python for data analysis and visualization in a short time! It is particularly useful for Python beginners and newbies or Data Scientist who knows other language tools or New Python Data Analysts or Data Science Beginners or New developers and Programmers or Programmers and developers who know other programming language but are new to python or Anyone who wants to use Python for data analysis and visualization in a short time!.

Enroll now: Data Science: Python for Data Analysis Full Bootcamp

Summary

Title: Data Science: Python for Data Analysis Full Bootcamp

Price: $64.99

Average Rating: 4.29

Number of Lectures: 76

Number of Quizzes: 10

Number of Published Lectures: 76

Number of Published Quizzes: 10

Number of Curriculum Items: 86

Number of Published Curriculum Objects: 86

Original Price: $119.99

Quality Status: approved

Status: Live

What You Will Learn

  • Code with Python Programming Language
  • Python Functional Programming
  • Structure Data using collection containers
  • Object-Oriented Design
  • Advanced Python Foundations
  • Handling Data with Python Libraries
  • Numerical Python
  • Extracting and Analyzing data from different resources
  • Data Analysis with Pandas
  • Data Visualization using matplotlib
  • Advanced Visualization with Seaborn
  • Build Python solutions for data science
  • Get Instructor QA Support and help
  • Who Should Attend

  • Python beginners and newbies
  • Data Scientist who knows other language tools
  • New Python Data Analysts
  • Data Science Beginners
  • New developers and Programmers
  • Programmers and developers who know other programming language but are new to python
  • Anyone who wants to use Python for data analysis and visualization in a short time!
  • Target Audiences

  • Python beginners and newbies
  • Data Scientist who knows other language tools
  • New Python Data Analysts
  • Data Science Beginners
  • New developers and Programmers
  • Programmers and developers who know other programming language but are new to python
  • Anyone who wants to use Python for data analysis and visualization in a short time!
  • Hello and welcome to Data Science: Python for Data Analysis Full Bootcamp.

    Data science is a huge field, and one of the promising fields that is spreading in a fast way. Also, it is one of the very rewarding, and it is increasing in expansion day by day, due to its great importance and benefits, as it is the future.

    Data science enables companies to measure, track, and record performance metrics for facilitating and enhancing decision making. Companies can analyze trends to make critical decisions to engage customers better, enhance company performance, and increase profitability.

    And the employment of data science and its tools depends on the purpose you want from them.

    For example, using data science in health care is very different from using data science in finance and accounting, and so on. And I’ll show you the core libraries for data handling, analysis and visualization which you can use in different areas.

    One of the most powerful programming languages ??that are used for Data science is Python, which is an easy, simple and very powerful language with many libraries and packages that facilitate working on complex and different types of data.

    This course will cover:

  • Python tools for Data Analysis

  • Python Basics

  • Python Fundamentals

  • Python Object-Oriented

  • Advanced Python Foundations

  • Data Handling with Python

  • Numerical Python(NumPy)

  • Data Analysis with Pandas

  • Data Visualization with Matplotlib

  • Advanced Graphs with Seaborn

  • Instructor QA Support and Help

  • HD Video Training + Working Files + Resources + QA Support.

    In this course, you will learn how to code in Python from the beginning and then you will master how to deal with the most famous libraries and tools of the Python language related to data science, starting from data collection, acquiring and analysis to visualize data with advanced techniques, and based on that, the necessary decisions are taken by companies.

    I am Ahmed Ibrahim, a software engineer and Instructor and I have taught more than 500,000 engineers and developers around the world in topics related to programming languages ??and their applications, and in this course, we will dive deeply into the core Python fundamentals, Advanced Foundations, Data handling libraries, Numerical Python, Pandas, Matplotlib and finally Seaborn.

    I hope that you will join us in this course to master the Python language for data analysis and Visualization like professionals in this field.

    We have a lot to cover in this course.

    Let’s get started!

    Course Curriculum

    Chapter 1: Mastering Python, Data Handling, Analysis and Visualization

    Lecture 1: Welcome to Data Science: Python for Data Analysis 2022 Full Bootcamp

    Lecture 2: Download and Install the working tools

    Lecture 3: Jupyter Overview + Markdown in Jupyter tutorial

    Lecture 4: Using Jupyter Notebook for coding with Python

    Lecture 5: Using Anaconda Prompt

    Chapter 2: The Basics of Python

    Lecture 1: Variables and Types Tutorial

    Lecture 2: Describe whats inside the code

    Lecture 3: Define Blocks and Avoid IndentationError

    Lecture 4: Strings full tutorial

    Lecture 5: Numbers, Math and f-string tutorial

    Lecture 6: Handling inputs and outputs

    Chapter 3: Python Data Structures

    Lecture 1: Structure Data using lists

    Lecture 2: Structure data using tuples

    Lecture 3: Structure Data using Dictionaries

    Lecture 4: Structure Data using sets

    Chapter 4: The Fundamentals of Python

    Lecture 1: Comparing Values

    Lecture 2: Output from Logics

    Lecture 3: Conditional Statements

    Lecture 4: The while loop in Python

    Lecture 5: The for loop in Python

    Lecture 6: Python Library Functions

    Lecture 7: User-Defined Functions

    Lecture 8: The lambda power

    Lecture 9: The break statement

    Lecture 10: The continue statement

    Lecture 11: The for else statement

    Lecture 12: Program to Put all together

    Chapter 5: OOP in Python

    Lecture 1: Core Python OOP: Classes and Instances

    Lecture 2: Core Python OOP: Exploring Inheritance

    Chapter 6: Advanced Foundations

    Lecture 1: Concise Comprehensions

    Lecture 2: Constructed modules and random

    Lecture 3: Doing mathematics

    Lecture 4: Doing statistics

    Lecture 5: Errors Exploration

    Lecture 6: Exceptions Playground

    Chapter 7: Python Data Handling

    Lecture 1: IO data in memory

    Lecture 2: Interacting with operating system data

    Lecture 3: Moving data files between directories

    Lecture 4: Data will be in the trash bin

    Lecture 5: Zipping and Unzipping Data

    Chapter 8: Numerical Python – NumPy

    Lecture 1: NumPy Level 1

    Lecture 2: NumPy Level 2

    Lecture 3: NumPy Level 3

    Lecture 4: NumPy Level 4

    Lecture 5: NumPy Level 5

    Lecture 6: NumPy Level 6

    Lecture 7: NumPy Level 7

    Lecture 8: NumPy Level 8

    Lecture 9: NumPy Level 9

    Chapter 9: Analyze Data with Pandas

    Lecture 1: Pandas data analysis level 1

    Lecture 2: Pandas data analysis level 2

    Lecture 3: Pandas data analysis level 3

    Lecture 4: Pandas data analysis level 4

    Lecture 5: Pandas data analysis level 5

    Lecture 6: Pandas data analysis level 6

    Chapter 10: Visualize Data with Matplotlib

    Lecture 1: Matplotlib data visualization level 1

    Lecture 2: Matplotlib data visualization level 2

    Lecture 3: Matplotlib data visualization level 3

    Lecture 4: Matplotlib data visualization level 4

    Lecture 5: Matplotlib data visualization level 5

    Lecture 6: Matplotlib data visualization level 6

    Lecture 7: Matplotlib data visualization level 7

    Chapter 11: Advanced Data graphs with Seaborn

    Lecture 1: Seaborn statistical graphs level 1

    Lecture 2: Seaborn statistical graphs level 2

    Lecture 3: Seaborn statistical graphs level 3

    Lecture 4: Seaborn statistical graphs level 4

    Lecture 5: Seaborn statistical graphs level 5

    Lecture 6: Seaborn statistical graphs level 6

    Lecture 7: Seaborn statistical graphs level 7

    Lecture 8: Seaborn statistical graphs level 8

    Chapter 12: Resources

    Lecture 1: Python Programming

    Lecture 2: NumPy

    Lecture 3: Pandas

    Lecture 4: Matplotlib

    Lecture 5: Seaborn

    Chapter 13: BONUS SECTION

    Lecture 1: Bonus

    Instructors

  • Data Science- Python for Analysis Full Bootcamp  No.2
    Ahmed El Mohandes
    Expert Software Engineer | Sr. Data Science & ML Consultant
  • Data Science- Python for Analysis Full Bootcamp  No.3
    SDE Arts by Ahmed EL Mohandes
    Where Skills Soar and Careers Take Flight
  • Rating Distribution

  • 1 stars: 36 votes
  • 2 stars: 64 votes
  • 3 stars: 332 votes
  • 4 stars: 729 votes
  • 5 stars: 917 votes
  • Frequently Asked Questions

    How long do I have access to the course materials?

    You can view and review the lecture materials indefinitely, like an on-demand channel.

    Can I take my courses with me wherever I go?

    Definitely! If you have an internet connection, courses on Udemy are available on any device at any time. If you don’t have an internet connection, some instructors also let their students download course lectures. That’s up to the instructor though, so make sure you get on their good side!