Machine Learning for Interviews & Research and DL basics

Machine Learning for Interviews & Research and DL basics

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Machine Learning, Linear Regression, PCA, Neural Networks, Hyperparameters, Deep Learning, Keras, Clustering, Case Study

Updated on Sep, 2026

Programming, Software Engineering, Software Practices

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Interested in Machine Learning, and Deep Learning and preparing for your interviews or research? Then, this course is for you!

The course is designed to provide the fundamentals of machine learning and deep learning. It is targeted toward newbies, scholars, students preparing for interviews, or anyone seeking to hone the data science skills necessary. In this course, we will cover the basics of machine learning, and deep learning and cover a few case studies.

This short course provides a broad introduction to machine learning, and deep learning. We will present a suite of tools for exploratory data analysis and machine learning modeling. We will get started with python and machine learning and provide case studies using keras and sklearn.

### MACHINE LEARNING ###

1.) Advanced Statistics and Machine Learning

Eigen Value Decomposition

Principal Component Analysis

Central Limit Theorem

Gaussian Distribution

Types of Machine Learning

Non-parametric Models

2.) Training Machine Learning Models

Supervised Machine Learning

Locally Weighted Linear Regression

Other classifier models in sklearn

Mapping non-linear functions using linear techniques

Overfitting and Regularization

Support Vector Machines

3.) Artificial Neural Networks

Backward Propagation

Activation functions

4.) Training Deep Neural Networks

Deep Neural Networks

Convolutional Neural Networks

Recurrent Neural Networks (GRU and LSTM)

5.) Unsupervised Learning

Clustering (k-Means)

6.) Implementation and Case Studies

Getting started with Python and Machine Learning

Case Study - Keras Digit Classifier

Case Study - Load Forecasting

So what are you waiting for? Learn Machine Learning, and Deep Learning in a way that will enhance your knowledge and improve your career!

Thanks for joining the course. I am looking forward to seeing you. let's get started!

Fundamentals of machine learning and deep learning with respect to big data applications.

Machine learning and deep learning concepts required to give data science interviews.

A suite of tools for exploratory data analysis and machine learning modeling.

Coding-based case studies

Basic knowledge of programming is required.

No prior data science experience is required.

Basic statistics and mathematics knowledge will be helpful

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

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