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Machine Learning with Mahout Certification Training(Self-Paced Learning)

Online Self Learning Courses are designed for self-directed training, allowing participants to begin at their convenience with structured training and review exercises to reinforce learning

USD 199 USD 299

Course Overview

In the modern information age of exponential data growth, the success of companies and enterprises depends on how quickly and efficiently they turn vast amounts of data into actionable information. Whether it's for processing hundreds or thousands of personal e-mail messages a day or driving user intent from petabytes of weblogs, the need for tools that can organize and enhance data has never been greater. Therein lies the premise and the promise of the field of machine learning and Apache Mahout.

Key Highlights

  • 20 Hrs of online self-paced learning 
  • Real-life Case Studies
  • Assignments
  • lifetime access to all the videos
  • Certification
  • Community forum for all our Learners
  • No Exam Included

What You'll Learn

  • Gain an insight into the Machine Learning techniques. 
  • Understand the algorithms of SVM, Naive Bayes, Random Forests,etc.
  • Implement these using 'Apache Mahout'
  • Understand the recommendation system
  • Learn Collaborative filtering, Clustering and Categorization
  • Analyse Big Data using Hadoop and Mahout
  • Implementing a recommender using MapReduce
  • Introduction to tools like Weka, Octave, Matlab, SAS

Career Benefits

  • Demand in the job market
  • Career opportunities
  • Better paycheck

Who Can Attend

  • Analytics Professionals
  • Data Scientists looking to hone their machine learning skills
  • Software Developers and Architects
  • Business Analysts wanting to learn Mahout for ML implementation
  • Professionals working with R, Matlab, Python, etc. 
  • Statisticians looking to learn machine learning techniques
  • Graduates aspiring to take a leap in analytics domain
     

Exam Formats

No Exam Included

Course Delivery

This course is available in the following formats:

  • Self-Paced Learning Duration: 20 Hrs

Course Syllabus


Introduction to Machine Learning and Apache Mahout

Learning Objectives - This module will give you an insight about what 'Machine Learning' is and How Apache Mahout algorithms are used in building intelligent applications.

Topics - Machine Learning Fundamentals, Apache Mahout Basics, History of Mahout, Supervised and Unsupervised Learning techniques, Mahout and Hadoop, Introduction to Clustering, Classification.

Mahout and Hadoop

Learning Objectives - In this module you will learn how to set up Mahout on Apache Hadoop. You will also get an understanding of Myrrix Machine Learning Platform.

Topics - Mahout on Apache Hadoop setup, Mahout and Myrrix.

Recommendation Engine

Learning Objectives - In this module you will get an understanding of the recommendation system in Mahout and different filtering methods.

Topics - Recommendations using Mahout, Introduction to Recommendation systems, Content Based (Collaborative filtering, User based, Nearest N Users, Threshold, Item based), Mahout Optimizations.

Implementing a recommender and recommendation platform

Learning Objectives - In this module you will learn about the Recommendation platforms and implement a Recommender using MapReduce.

Topics - User based recommendation, User Neighbourhood, Item based Recommendation, Implementing a Recommender using MapReduce, Platforms: Similarity Measures, Manhattan Distance, Euclidean Distance, Cosine Similarity, Pearson's Correlation Similarity, Loglikihood Similarity, Tanimoto, Evaluating Recommendation Engines (Online and Offline), Recommendors in Production.

Clustering

Learning Objectives - This module will help you in understanding 'Clustering' in Mahout and also give an overview of common Clustering Algorithms.

Topics - Clustering, Common Clustering Algorithms, K-means, Canopy Clustering, Fuzzy K-means and Mean Shift etc., Representing Data, Feature Selection, Vectorization, Representing Vectors, Clustering documents through example, TF-IDF, Implementing clustering in Hadoop, Classification

Classification

Learning Objectives - In this module you will get a clear understanding of Classifier and the common Classifier Algorithms.

Topics - Examples, Basics, Predictor variables and Target variables, Common Algorithms, SGD, SVM, Navie Bayes, Random Forests, Training and evaluating a Classifier, Developing a Classifier.

Mahout and Amazon EMR

Learning Objectives - At the end of this module, you will get an understanding of how Mahout can be used on Amazon EMR Hadoop distribution.

Topics - Mahout on Amazon EMR, Mahout Vs R, Introduction to tools like Weka, Octave, Matlab, SAS.

Project

Learning Objectives - In this module you will develop an intelligent application using Mahout on Hadoop.

Topics A complete recommendation engine built on application logs and transactions.

FAQ's


How soon after Signing up would I get access to the Learning Content?

As soon as you enrol into the course, your LMS (The Learning Management System) access will be functional. You will immediately get access to our course content in the form of a complete set of Videos, PPTs, PDFs and Assignments. You can start learning right away.

Why Learn Machine Learning with Mahout?

In the modern information age of exponential data growth, the success of companies and enterprises depends on how quickly and efficiently they turn vast amounts of data into actionable information. Whether it's for processing hundreds or thousands of personal e-mail messages a day or driving user intent from petabytes of weblogs, the need for tools that can organize and enhance data has never been greater. Therein lies the premise and the promise of the field of machine learning and Apache Mahout.

Mike Williams, Direct Consultant