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Decision Trees, Random Forests, AdaBoost & XGBoost in Python

person icon Abhishek And Pukhraj

4.5

Decision Trees, Random Forests, AdaBoost & XGBoost in Python

Learn Decision Trees and Ensemble techniques in Python for implementing Bagging, Random Forest and XGBoost

updated on icon Updated on Jun, 2025

language icon Language - English

person icon Abhishek And Pukhraj

English [CC]

category icon Development ,Data Science,Machine Learning

Lectures -42

Resources -1

Duration -5 hours

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4.5

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Course Description

You're looking for a complete Decision tree course that teaches you everything you need to create a Decision tree/ Random Forest/ XGBoost model in Python, right?

You've found the right Decision Trees and tree-based advanced techniques course!

After completing this course you will be able to:

  • Identify the business problem that can be solved using Decision tree/ Random Forest/ XGBoost of Machine Learning.

  • Have a clear understanding of Advanced Decision tree-based algorithms such as Random Forest, Bagging, AdaBoost and XGBoost.

  • Create a tree-based (Decision tree, Random Forest, Bagging, AdaBoost and XGBoost) model in Python and analyze its result.

  • Confidently practice, discuss and understand Machine Learning concepts.

How this course will help you?

A Verifiable Certificate of Completion is presented to all students who undertake this Machine learning advanced course.

If you are a business manager an executive, or a student who wants to learn and apply machine learning in Real-world problems of business, this course will give you a solid base for that by teaching you some of the advanced techniques of machine learning, which are Decision tree, Random Forest, Bagging, AdaBoost and XGBoost.

Why should you choose this course?

This course covers all the steps that one should take while solving a business problem through a Decision tree.

Most courses only focus on teaching how to run the analysis but we believe that what happens before and after running the analysis is even more important i.e. before running the analysis it is very important that you have the right data and do some pre-processing on it. After running the analysis, you should be able to judge how good your model is and interpret the results to be able to help your business.

What makes us qualified to teach you?

The course is taught by Abhishek and Pukhraj. As managers in a Global Analytics Consulting firm, we have helped businesses solve their business problems using machine learning techniques and we have used our experience to include the practical aspects of data analysis in this course.

Our Promise

Teaching our students is our job and we are committed to it. If you have any questions about the course content, practice sheet or anything related to any topic, you can always post a question in the course or send us a direct message.

Who is this course for?

  • People pursuing a career in data science.
  • Working Professionals beginning their Data journey.
  • Statisticians need more practical experience.
  • Anyone curious to master the Decision Tree technique from Beginner to Advanced in a short span of time.

Goals

  • Get a solid understanding of the decision tree.
  • Understand the business scenarios where a decision tree is applicable.
  • Tune a machine learning model's hyperparameters and evaluate its performance.
  • Use Pandas DataFrames to manipulate data and make statistical computations.
  • Use decision trees to make predictions.
  • Learn the advantages and disadvantages of the different algorithms.

Prerequisites

  • Students will need to install Python and Anaconda software but we have a separate lecture to help you install the same.
Decision Trees, Random Forests, AdaBoost & XGBoost in Python

Curriculum

Check out the detailed breakdown of what’s inside the course

Introduction

1 Lectures
  • play icon Welcome to the Course! 03:08 03:08

Machine Learning Basics

3 Lectures
Tutorialspoint

Setting up Python and Python Crash Course

9 Lectures
Tutorialspoint

Simple Decision trees

14 Lectures
Tutorialspoint

Simple Classification Tree

5 Lectures
Tutorialspoint

Ensemble technique 1 - Bagging

2 Lectures
Tutorialspoint

Ensemble technique 2 - Random Forests

3 Lectures
Tutorialspoint

Ensemble technique 3 - Boosting

4 Lectures
Tutorialspoint

Instructor Details

Abhishek and Pukhraj

Abhishek and Pukhraj

Start-Tech Academy is a technology-based Analytics Education Company and aims at Bringing Together the analytics companies and interested Learners.
Our top quality training content along with internships and project opportunities helps students in launching their Analytics journey.

Founded by Abhishek Bansal and Pukhraj Parikh.

Working as a Project manager in an Analytics consulting firm, Pukhraj has multiple years of experience working on analytics tools and software. He is competent in  MS office suites, Cloud computing, SQL, Tableau, SAS, Google analytics and Python.

Abhishek worked as an Acquisition Process owner in a leading telecom company before moving on to learning and teaching technologies like Machine Learning and Artificial Intelligence.


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