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EncartaLabs

Machine Learning using SAS Viya

( Duration: 2 Days )

This Machine Learning using SAS Viya training course covers the theoretical foundation for different techniques associated with supervised machine learning models. A series of demonstrations and practices is used to reinforce all the concepts and the analytical approach to solving business problems. In addition, a business case study is defined to guide you through all steps of the analytical life cycle, from problem understanding to model deployment, through data preparation, feature selection, model training and validation, and model assessment and deployment. This course uses Model Studio, the pipeline flow interface in SAS Viya that enables you to prepare, develop, compare, and deploy advanced analytics models. You learn to train supervised machine learning models to make better decisions on big data.

By attending Machine Learning using SAS Viya workshop, delegates will learn to:

  • Apply the analytical life cycle to business need
  • Incorporate a business-problem-solving approach in daily activities
  • Prepare and explore data for analytical model development
  • Create and select features for predictive modeling
  • Develop a series of supervised learning models based on different techniques such as decision tree, ensemble of trees (forest and gradient boosting), neural networks, and support vector machines
  • Evaluate and select the best model based on business needs
  • Deploy and manage analytical models under production

  • Familiarity with basic statistics. Previous SAS software experience is helpful but not required.

The Machine Learning using SAS Viya class is ideal for:

  • Business analysts, data analysts, marketing analysts, marketing managers, data scientists, data engineers, financial analysts, data miners, statisticians, mathematicians, and others who work in correlated areas.

COURSE AGENDA

1

Introduction

  • Machine learning in business decision making
  • Essentials of supervised prediction
  • Introduction to SAS Viya
2

Data Preparation

  • Data exploration
  • Feature extraction
  • Input transformations
  • Feature selection
  • Best practices
  • Selecting your algorithm
3

Decision Trees and Ensembles of Trees

  • Introduction
  • Tree-structure models
  • Recursive partitioning
  • Pruning
  • Ensembles of trees
4

Neural Networks

  • Introduction
  • Network architecture
  • Network learning and optimization
5

Support Vector Machines and Additional Topics

  • Large-margin linear classifier
  • Methods of solution
  • Nonlinear classifier: Kernel Trick
  • Additional tools
6

Model Assessment and Deployment

  • Model assessment and comparison
  • Model deployment

Encarta Labs Advantage

  • One Stop Corporate Training Solution Providers for over 6,000 various courses on a variety of subjects
  • All courses are delivered by Industry Veterans
  • Get jumpstarted from newbie to production ready in a matter of few days
  • Trained more than 50,000 Corporate executives across the Globe
  • All our trainings are conducted in workshop mode with more focus on hands-on sessions

View our other course offerings by visiting https://www.encartalabs.com/course-catalogue-all.php

Contact us for delivering this course as a public/open-house workshop/online training for a group of 10+ candidates.

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