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Predictive Modeling Training (2 Courses, 15+ Projects)

This Online Predictive Modeling Training includes 2 courses, 15 Projects with 79+ hours of video tutorials and Lifetime access.

You will also get verifiable certificates (unique certification number and your unique URL) when you complete each of them. This course will help you learn to interpret data for statistical analysis using tools such as SAS, Minitab, SPSS.

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Home » Data Science » Data Science Courses » Predictive Modeling Training (2 Courses, 15+ Projects)

What you get in this Predictive Modeling Training?

Online Classes
Technical Support
Mobile App Access
Case Studies
Download Curriculum

About Predictive Modeling Course

CourseNo. of Hours
Predictive Modeling Training2h 2m
Predictive Modeling with SAS Enterprise Miner9h 35m
SPSS - Predictive Modeling using SPSS13h 37m
Machine Learning Python Case Study - Predictive Modeling7h 1m
Minitab - Predictive Modeling16h 11m
Project on EViews - Regression Modeling3h 19m
Logistic Regression2h 4m
R Practical - Logistic Regression with R4h 18m
Project on ML - Predicting Prices using Regression2h 21m
Project - Exploratory Data Analysis EDA using ggplot2, R and Linear Regression2h 08m
Logistic Regression using SAS Stat0m
Linear Regression in Python2h 31m
Python Data Science Case Study - Predicting Survival of Titanic Passengers1h 51m
Project - House Price Prediction using Linear Regression3h 24m
Project - Credit Default using Logistic Regression3h 9m
R Practical - Predictive Model for Term Deposit Investment3h 12m
Project on R - Card Purchase Prediction2h 31m

Course Name Online Predictive Modeling Course Bundle
Deal You get access to all 2 courses, 15 Projects bundle. You do not need to purchase each course separately.
Hours 79+ Video Hours
Core Coverage Predictive modeling using tools such as SAS, Minitab, SPSS.
Course Validity Lifetime Access
Eligibility Anyone who is serious about learning predictive modeling and wants to make a career in Data/Statistical Analysis
Pre-Requisites Basis Statistical concepts
What do you get? Certificate of Completion for each of the 2 courses, 15 Projects
Certification Type Course Completion Certificates
Verifiable Certificates? Yes, you get verifiable certificates for each course with a unique link. These link can be included in your resume/Linkedin profile to showcase your enhanced data analysis skills
Type of Training Video Course – Self Paced Learning
Software Required SPSS, Minitab, SAS, Microsoft Excel for practice
System Requirement 1 GB RAM or higher
Other Requirement Speaker / Headphone

Online Predictive Modeling Course Curriculum


In this section, each module of the Predictive Modeling training is explained briefly.

Here, we provide more details on the predictive modeling course content and explain at a very high-level what concepts will be covered under each course. This should give a fair understanding to the prospective students on what they can expect from this course and how useful will it be for their career goal.

Sr. No. Course Name Course Duration Course Description
1 Predictive Modelling training 2 This predictive modeling course is more than 2 hours long and here students learn about the introduction to predictive modeling, variables and its definition, steps involved in predictive modeling, smoothing methods, regression algorithms, clustering algorithms, neural network and support vector machines. Each concept is covered with enough examples and practice exercises. Basics of statistics and data visualization are also covered. Special emphasis is given to data preprocessing, data preparation, model evaluation, and deployment. Data distribution, data plotting, and charts, correlation vs causation, model interpretation, model improvement, etc. are also covered in this module.
2 SAS – Predictive Modeling with SAS Enterprise Miner 9 This predictive modeling course is 9.5 hours long and is quite extensive. It covers topics such as PM SAS EM Introduction, PM SAS EM variable selection, SAS PM EM combination, SAS PM EM neural network, and SAS PM EM regression. It starts with an introduction to SAS and then gradually move towards topics such as selecting SAS tables, creating input data nodes, decision tree in SAS, creating score model, ROC chart, Neural network training, regression -table effect to name a few. This module covers everything that SAS includes for predictive modeling.
3 Predictive Modeling using Minitab 16 Minitab is another important tool for predictive modeling. This predictive modeling course on Minitab is about 16 hours long and covers topics such as Minitab and its application in predictive modeling, ANOVA using Minitab, Correlation techniques, regression modeling, predictive modeling using MS Excel. Under each of these heading, various small topics are covered. These are descriptive statistics, nonlinear regression, Anova, control charts, etc. This module contains various case studies from finance and other domains to explain important concepts.
4 Predictive Modeling using SPSS 13 This module is more than 13 hours long and focuses on the implementation of predictive modeling using SPSS. SPSS is developed by IBM and is another widely used tool for predictive modeling. This predictive modeling course covers topics such as importing data to SPSS, correlation techniques, linear regression modeling, multiple linear regression, logistic regression, and multinomial regression. This course describes use cases from financial, pharmaceuticals and manufacturing domains and is very much suitable for students from these domains.
Total Duration 79+ Hours

 


Certificate of Completion

Predictive Modeling Course Certification


 

What is Predictive Modeling?

Predictive modeling can be understood as the process of creation, test, and validation of a model. It uses concepts from statistics in predicting the outcomes. Predictive modeling contains a different set of methods like machine learning, statistics, artificial intelligence and so on. These models are made up of several predictors, also called attributes that are likely to impact future results. Predictive modeling is currently the most widely used in computer science, information technology, and information services domain.

This predictive modeling course targets to provide predictive modeling skills as mentioned above to business sectors/domains. Quantitative methods and predictive modeling concepts from this predictive modeling course could be extensively used in many fields to understand the current customer behavior, customer satisfaction, financial market trends, studying effects of medicine in pharma sectors after drugs are developed and administered.

Minitab or SAS and SPSS are among the leading developers in the world towards building statistical analysis software. Across the world, these software’s are used by thousands of companies. These are also used by over 10000 universities and colleges for research and teaching. Some major clients of Minitab, for example, consist of Pfizer, Royal Bank of Scotland, Nestle, Boeing, Toshiba, and DuPont.

Many independent studies conducted by companies like Mckinsey, Gartner, and others have predicted that data science, machine learning, and predictive modeling is going to be the biggest jobs of the 21st century and these professionals are going to be rewarded the best for it.

Industry Growth Trend

The global Advanced Analytics Market size was USD 7.04 billion in 2014 and is projected to reach USD 29.53 billion by 2019, growing at a Compound Annual Growth Rate (CAGR) of 33.2% during the forecast period.
[Source - MarketsandMarkets]

Average Salary

Average Salary$83,220 per year
The average salary for a Statistician is $83,220 per year in the United States.
[Source - Indeed]

What tangible skills will I learn from this Predictive Modeling course?

This course covers many tangible skills that students can count on for jobs and career switch. These skills are explained here to help students understand the value of this predictive modeling course.

  • Skill to analyze data and see a complex pattern: data understanding and pattern extraction is a key skill for predictive modeling and a successful person in this domain should be able to make sense of data in no time. In this course, you will learn how to do that. You will be taught various types of data distribution, data patterns, and data understanding techniques. These skills will help you lifelong in making better and more intuitive decisions in all fields of work.
  • Hands-on coding skill: – The predictive modeling course teaches three tools- Minitab, SAS, and SPSS. For that, this predictive modeling course is quite good. For predictive modeling and machine learning course one needs to be comfortable with coding, and hence having a sharp understanding of practical implementation is very important. This course teaches all these skills so that the student is industry ready and can comfortably work in real-life use cases.
  • Strong understanding of concepts: – Machine learning concepts such as regression, classification, support vector machines, neural network, ROC curve, and many more concepts are taught which are frequently asked in interviews and which judges a candidate’s understanding of predictive modeling.

Pre-requisites

    There are some pre-requisites for this predictive modeling training course that must be fulfilled otherwise the understanding, of course, could become difficult for some students. Do not worry, the pre-requisite is not very difficult and almost anyone can qualify for that. If not, you can enroll for a bridge course or learn the pre-requisite first and then enroll for this predictive modeling course. These pre-requisites are: –

  • Basic statistics understanding such as mean, median, mode, the standard deviation is required. If you have forgotten these simple terms, you can revise your high school statistics class or see a couple of videos on YouTube. These concepts, however, will again be covered in this predictive modeling course, but some previous understanding is good to start with.
  • Familiarity with excel is also a good thing. You will not learn excel but you will use excel data in Minitab, SPSS, and SAS too. So, some understanding of MS Excel is needed. If you know VBA tool-pack in excel then it is an added advantage, but not mandatory.
  • Because machine learning is based on mathematics and hence it is good that you know the basics of linear algebra such as matrix and determinants, simple calculus like what is differentiation, etc.
  • Exposure to one programming language is necessary. If you have studied C or C++ in college that should be sufficient.

Target Audience

    This course is suitable for a wide range of audiences. In this section, we specifically explain this to ensure you know if you are suitable for this predictive modeling training.

  • Students from technical or computer science fields are highly welcome, similarly, those from mathematics or statistics background is highly suitable. Most commonly students have a degree in B. Tech / BCA/ B.Sc./ MCA/ M. Sc/ M. Tech or MBA degree.
  • Entry-level working professionals from the software field, banking, insurance, share market, information technologies who want to migrate to data analysis are also very suitable and they comprise a major chunk of our class size.
  • The predictive modeling course is also suitable for managers and seasoned industry professionals who want to be a consultant or data scientist.
  • People from engineering, biotechnology, law, medicine, theoretical computer science, geology, and ocean studies also take this predictive modeling training to do data analysis in their respective fields.
  • Our past students have been Pharma and research scientists, Professionals of Equity Research and charted financial accountants, Quantitative and Predictive Modelers and Professionals from these domains.

Predictive Modeling Course FAQ’s


In this section, we list out some of the common questions frequently asked by students before enrolling for this course: –

Will this predictive modeling course teach me real-life scenarios of predictive modeling?

Yes. The predictive modeling course teaches all concepts with several live data from industry and explains many case studies in the lecture. Thus, it is a very practical and actual real-life scenario. For example, it takes stock data and then explains how time series modeling can be done on it.

Is the field of predictive modeling in demand these days?

Predictive modeling is a lot in demand. Almost all IT companies are starting with Machine learning and hence they need trained people. Few years down the line, when all these companies will be established with ML, then they will already have enough ML people and hence the right time to learn this skill is NOW.

Will predictive modeling training help me with practical skills or only theoretical knowledge?

The predictive modeling course covers both practical as well as a theoretical skills because both are important. It teaches three software tools Minitab, SPSS and SAS so you can understand that it is very practical as each example is demonstrated in this software.

How much time would I need to spend on this in a week?

Typically, you would need to spend 4-5 hours per week, but you can do more or less. As the predictive modeling course is self-paced that should not be a problem.

Will I be able to manage this predictive modeling course with a full-time job?

Time management is a personal thing and if you are determined for it, you can do so. We can say from our experience of teaching hundreds of students that it is possible and doable. As the predictive modeling course is self-paced and comes with a lifetime validity you can certainly manage with your job and other responsibilities.

Sample Preview 


  • Arranging columns in Asc Desc order

    Arranging columns in Asc Desc order

    01.43
  • Chi-Square Test

    Chi-Square Test

    06.46
  • Heart Pulse Study Continues

    Heart Pulse Study Continues

    10.34
  • Continue on Interpretation on Database

    Continue on Interpretation on Database

    08.31
  • Regression Equation

    Regression Equation

    07.45
  • Loan Applicant

    Loan Applicant

    06.16

Career Benefits

  • Many of our previous students have achieved great career success with this predictive modeling training course and realized their dream of becoming a data analyst and data scientist. Thus, you can very much rely on the career benefits and waste no time in the dilemma. Usually, career benefits come in one of the three terms below: –
  • Job change: – You can switch to a more happening job after this course. As soon as you finish the predictive modeling course you can start attending interviews and look out of jobs. People usually become senior data analysts, associate data scientists, data scientists and data visualization experts after taking this predictive modeling course.
  • Salary hike: – With a new job, you get better pay. Usually, such skills are paid higher compared to usual software jobs and hence you can expect up to a 30-50% hike in your salary.
  • Promotion: – if you show enough enthusiasm, you can get promoted in the current role, get more responsibility and raise the corporate ladder.
  • Job satisfaction is a great benefit from this field as happiness ratio is highest currently.

Reviews


 

Nyckees Daan - Predictive Modeling Course

Testimonials

Great course

Great video learning! It is taught nice and clear. At first, a bit slow, but as the course progressed, was the tempo at just the right place with good articulation. The content was good, with some nice examples worked out and examples from real life, but could be made more elaborate. Looking forward to more courses of the same teacher.
Linked

Nyckees Daan

 

 

Lee Tze Hui - Predictive Modeling Course

Testimonials

Predictive Modeling

This is a good course for those who have zero or little knowledge of predictive modeling. It covers most of the algorithms to do predictive modeling. It also provides some examples and sample questions for practice. I wish this could provide more study material and more practical questions.
Linked

Lee Tze Hui

 

 

SEYNI SOULEY BOUBACAR - Predictive Modeling Course

Testimonials

Completion of predictive modeling and implementation using excel.

In this course named “Predictive modeling and implementation using MS excel”, I learned about the statistical calculation using excel. the course is very comprehensive and easy to memorize because of the expertise of the lecturer. with this course, I can avoid many errors when doing statistical calculations like Anova. it also helps me to save time. THANKS, EDUCBA
Linked

SEYNI SOLEY BOUBACAR

 

 

Atish Palav - Predictive Modeling Course

Testimonials

Great Experience

The course helped me to get insights on the various hypothesis that are done to do the predictive analysis which helps us to make observations and also make predictions and analyze the behavior of the trend, also working on Minitab was a great experience wherein getting the descriptive analysis is much easier than excel.
Linked

Atish Palav

 

 

VAISHNAVI SINGH - Predictive Modeling Course

Testimonials

Great refresher course

The course was very relevant to my job and will help me in most aspects of my work. The hands-on practical training sessions were very good. The trainer got the learning message across by breaking everything down into simplified sections. Handout material was very good as there is a lot of information in them that will help me in my job.
Linked

VAISHNAVI SINGH

 

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CoursesNo. of Hours
Predictive Modeling Training2h 2m
Predictive Modeling with SAS Enterprise Miner9h 35m
SPSS - Predictive Modeling using SPSS13h 37m
Machine Learning Python Case Study - Predictive Modeling7h 1m
Minitab - Predictive Modeling16h 11m
Project on EViews - Regression Modeling3h 19m
Logistic Regression2h 4m
R Practical - Logistic Regression with R4h 18m
Project on ML - Predicting Prices using Regression2h 21m
Project - Exploratory Data Analysis EDA using ggplot2, R and Linear Regression2h 08m
Logistic Regression using SAS Stat0h
Linear Regression in Python2h 31m
Python Data Science Case Study - Predicting Survival of Titanic Passengers1h 51m
Project - House Price Prediction using Linear Regression3h 24m
Project - Credit Default using Logistic Regression3h 9m
R Practical - Predictive Model for Term Deposit Investment3h 12m
Project on R - Card Purchase Prediction2h 31m
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