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IBM

Introduction to Neural Networks and PyTorch

PyTorch is one of the top 10 highest paid skills in tech (Indeed). As the use of PyTorch for neural networks rockets, professionals with PyTorch skills are in high demand. This course is ideal for AI engineers looking to gain job-ready skills in PyTorch that will catch the eye of an employer. AI developers use PyTorch to design, train, and optimize neural networks to enable computers to perform tasks such as image recognition, natural language processing, and predictive analytics. During this course, you’ll learn about 2-D Tensors and derivatives in PyTorch. You’ll look at linear regression prediction and training and calculate loss using PyTorch. You’ll explore batch processing techniques for efficient model training, model parameters, calculating cost, and performing gradient descent in PyTorch. Plus, you’ll look at linear classifiers and logistic regression. Throughout, you’ll apply your new skills in hands-on labs, and at the end, you’ll complete a project you can talk about in interviews. If you’re an aspiring AI engineer with basic knowledge of Python and mathematical concepts, who wants to get hands-on with PyTorch, enroll today and get set to power your AI career forward!

Status: Regression Analysis
Status: Logistic Regression
IntermediateCourse18 hours

Featured reviews

JA

5.0Reviewed Jul 8, 2023

A well curated course filled with stuff essentially needed to acquire the knowledge of Deep Neural Networks with PyTorch and encompasses the domain of practical labs as well

DD

5.0Reviewed Jul 12, 2020

Excellent Course. I love the way the course was presented. There were a lot of practical and visual examples explaining each module. It is highly recommended!

ME

5.0Reviewed Mar 29, 2020

this course provides a very good and cohesive introduction to Neural Networks. I learned a lot during my journey and I recommend it for anyone interesting in the field.

SE

5.0Reviewed Jul 26, 2020

Wonderful course!!! Best among all the courses under AI Engineer Certificate by IBM. Deep learning always haunted me with the maths involved but now I get a very good start with this.

YY

5.0Reviewed Oct 4, 2022

N​ot only did I gain the basic knowledge of deep learning, but also learned Pytorch. It is a good course, however, there is still a lot more to go in the area of Deep learning,

FF

5.0Reviewed Apr 2, 2023

The explanation is clear. The sample exercise is easy to follow. An excellent structure that walks the learner from a beginner to gaining advanced knowledge at the end.

AF

4.0Reviewed Dec 1, 2022

Excellent course, works its way through basics to fully fledged machine learning models at a good pace. A few of the examples used in the lab code throw errors, these should be rectified

SK

5.0Reviewed Nov 16, 2019

Awesome! This course gives me the basic workflow for using machine learning technique in my research! The materials in the form of Jupyter lab really help!

D

5.0Reviewed Jun 9, 2022

The explanation is simple and understandable. They explained deep neural networks so beautifully with PyTorch. Thank you very much for this course IBM.

MM

4.0Reviewed Jun 1, 2023

Pros: The course is extremely well structured. The presentations are very informative and clear also well explained.Cons: The assignments and quizzes are not challenging at all

AN

5.0Reviewed Mar 6, 2020

It was a very informative and interesting lecture. I learn a lot about the details when using PyTorch to build and train a deep neural network. I am so thankful.

TG

4.0Reviewed Jan 10, 2020

Very intensive course. Could do more training labs. But this is definitely a very dense course. Extremely helpful to get started on ML/Deep Learning.

All reviews

Showing: 20 of 418

Janis Slapins
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Reviewed Mar 19, 2020
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