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Beginning with Machine Learning, Data Science and Python

Fundamentals of Data Science : Exploratory Data Analysis (EDA), Regression (Linear & logistic), Visualization, Basic ML
4.7
4.7/5
(157 reviews)
7,920 students
Created by

7.8

Classbaze Grade®

5.3

Freshness

8.5

Popularity

9.1

Material

Fundamentals of Data Science : Exploratory Data Analysis (EDA)
Platform: Udemy
Video: 3h 38m
Language: English
Next start: On Demand

Best Data Science classes:

Classbaze Rating

Classbaze Grade®

7.8 / 10

CourseMarks Score® helps students to find the best classes. We aggregate 18 factors, including freshness, student feedback and content diversity.

Freshness

5.3 / 10
This course was last updated on 7/2018.

Course content can become outdated quite quickly. After analysing 71,530 courses, we found that the highest rated courses are updated every year. If a course has not been updated for more than 2 years, you should carefully evaluate the course before enrolling.

Popularity

8.5 / 10
We analyzed factors such as the rating (4.7/5) and the ratio between the number of reviews and the number of students, which is a great signal of student commitment.

New courses are hard to evaluate because there are no or just a few student ratings, but Student Feedback Score helps you find great courses even with fewer reviews.

Material

9.1 / 10
Video Score: 8.1 / 10
The course includes 3h 38m video content. Courses with more videos usually have a higher average rating. We have found that the sweet spot is 16 hours of video, which is long enough to teach a topic comprehensively, but not overwhelming. Courses over 16 hours of video gets the maximum score.
The average video length is 5 hours 35 minutes of 540 Data Science courses on Udemy.
Detail Score: 9.8 / 10

The top online course contains a detailed description of the course, what you will learn and also a detailed description about the instructor.

Extra Content Score: 9.5 / 10

Tests, exercises, articles and other resources help students to better understand and deepen their understanding of the topic.

This course contains:

0 article.
18 resources.
0 exercise.
0 test.

In this page

About the course

85% of data science problems are solved using exploratory data analysis (EDA), visualization, regression (linear & logistic). So naturally, 85% of the interview questions come from these topics as well.

This concise course, created by UNP, focuses on what matter most. This course will help you create a solid foundation of the essential topics of data science. With this solid foundation, you will go a long way, understand any method easily, and create your own predictive analytics models.

At the end of this course, you will be able to:

•independently build machine learning and predictive analytics models
•confidently appear for exploratory data analysis, foundational data science, python interviews
•demonstrate mastery in exploratory data science and python
•demonstrate mastery in logistic and linear regression, the workhorses of data science
This course is designed to get students on board with data science and make them ready to solve industry problems. This course is a perfect blend of foundations of data science, industry standards, broader understanding of machine learning and practical applications.
Special emphasis is given to regression analysis. Linear and logistic regression is still the workhorse of data science. These two topics are the most basic machine learning techniques that everyone should understand very well. In addition, concepts of overfitting, regularization etc., are discussed in detail. These fundamental understandings are crucial as these can be applied to almost every machine learning method.
This course also provides an understanding of the industry standards, best practices for formulating, applying and maintaining data-driven solutions. It starts with a basic explanation of Machine Learning concepts and how to set up your environment. Next, data wrangling and EDA with Pandas are discussed with hands-on examples. Next, linear and logistic regression is discussed in detail and applied to solve real industry problems. Learning the industry standard best practices and evaluating the models for sustained development comes next.
Final learnings are around some of the core challenges and how to tackle them in an industry setup. This course supplies in-depth content that put the theory into practice.

What can you learn from this course?

✓ You will be able to apply data science algorithms for solving industry problems
✓ You will have a clear understanding of industry standards and best practices for predictive model building
✓ You will be able to derive key insights from data using exploratory data analysis techniques
✓ You will be able to efficiently handle data in a structured way using Pandas
✓ You will have a strong foundation of linear regression, multiple regression and logistic regression
✓ You will be able to use python scikit-learn for building different types of regression models
✓ You will be able to use cross validation techniques for comparing models, select parameters
✓ You will know about common pitfalls in modeling like over-fitting, bias-variance trade off etc..
✓ You will be able to regularize models for reliable predictions

What you need to start the course?

• Basic programming in any language
• Basic Mathematics
• Some exposure to Python (but not mandatory)

Who is this course is made for?

• Anyone willing to take the first step towards data science
• Anyone willing to develop a solid foundation for data science
• Anyone planning to build the first regression / machine learning models
• Anyone willing to learn exploratory data analysis

Are there coupons or discounts for Beginning with Machine Learning, Data Science and Python ? What is the current price?

The course costs $14.99. And currently there is a 40% discount on the original price of the course, which was $24.99. So you save $10 if you enroll the course now.
The average price is $11.5 of 540 Data Science courses. So this course is 30% more expensive than the average Data Science course on Udemy.

Will I be refunded if I'm not satisfied with the Beginning with Machine Learning, Data Science and Python course?

YES, Beginning with Machine Learning, Data Science and Python has a 30-day money back guarantee. The 30-day refund policy is designed to allow students to study without risk.

Are there any financial aid for this course?

Currently we could not find a scholarship for the Beginning with Machine Learning, Data Science and Python course, but there is a $10 discount from the original price ($24.99). So the current price is just $14.99.

Who will teach this course? Can I trust UNP United Network of Professionals?

UNP United Network of Professionals has created 2 courses that got 1,270 reviews which are generally positive. UNP United Network of Professionals has taught 24,792 students and received a 4.4 average review out of 1,270 reviews. Depending on the information available, we think that UNP United Network of Professionals is an instructor that you can trust.
Publishing top-notch data science learning materials
At UNP our vision is to make learning fun, fulfilling and personalized. We are working towards democratizing data science and breaking down the entry barrier to analytics and data science world.
We are committed to develop and publish top-notch data science learning materials. The materials are designed to make the students ready for the data science industry. All the contents developed at UNP are digital, either as e-books, video lectures, VR classrooms. Apart from distributing contents to individuals, we provide support for learning materials for corporate clients.
The learning materials are developed only by experienced data science professionals and professors from tier 1 universities. Every material goes through strict review procedure before it gets published. Every material coming out from UNP is accompanied by code snippets, application to industrial projects and tips to prepare for a job interviews.
Aligned with our vision, UNP scholarship program is set to provides learning opportunities for students with financial challenges.
Browse all courses by on Classbaze.

7.8

Classbaze Grade®

5.3

Freshness

8.5

Popularity

9.1

Material

Platform: Udemy
Video: 3h 38m
Language: English
Next start: On Demand

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