Big Data and Hadoop Course Training in Irvine, CA, United States

Get future-ready, understand how to harness the power locked in Big Data using Hadoop

  • Get a deeper knowledge of various Big Data frameworks
  • Hands-on learning on Big data Analytics with Hadoop
  • Projects related to banking, governmental sectors, e-commerce websites, etc
  • Learn to extract information with Hadoop MapReduce using HDFS, Pig, Hive, etc.
  • Upgrade your career in the field of Big data

Demand for Analyzing Big Data with Hadoop

At the crux of data analysis is the ability to decipher raw data, process it and arrive at meaningful and actionable insights that can shape business strategies. According to the latest research, nearly 2.5 quintillion bytes of data is created every day, and the number is slowly edging upwards. The storage and processing power needed to handle these large volumes of data cannot be handled in an efficient manner with traditional frameworks and platforms. So, there arose a need to explore distributed storages and parallel processing operations in order to understand and make sense of these large volumes of data or big data. Hadoop by Apache provides the much-needed power that is required to manage such situations to handle Big Data. Based on data produced by Wanted analytics it was found out that the top five industries hiring Big Data related expertise include Professional, Scientific and Technical Services (25%), Information Technology (17%), Manufacturing (15%), Finance and Insurance (9%) and Retail Trade (8%). 

Simply put, big data would be the problem and Hadoop would be one of the solutions leveraged to make sense of it. With the inclusion of a much needed HDFS component, the distributed storage problem is taken care of while the MapReduce component optimizes parallel data processing. According to Gartner data, nearly 26% of the analysts are leveraging Hadoop in their daily tasks which makes it imperative to learn the platform and stay ahead of the curve. In addition to its ability to handle concurrent tasks, Hadoop is scalable and cost-effective as well, making the lives of analysts much easier than before.

Benefits of earning Hadoop skills in Big Data Analysis

With most businesses facing a data deluge, the Hadoop platform helps in processing these large volumes of data in a rapid manner, thereby offering numerous benefits at both the organization and individual level.


Individual Benefits:

Undergoing training in Hadoop and big data is quite advantageous to the individual in this data-driven world:

  • Enhance your career opportunities as more organizations work with big data
  • Professionals with good knowledge and skills in Hadoop are in demand across various industries
  • Improve your salary with a new skill-set. According to ZipRecruiter, a Hadoop professional earns an average of $133,296 per annum
  • Secure a position with leading companies like Google, Microsoft, and Cisco with skills in Hadoop and big data

Organizational Benefits:

Training in Big Data and Hadoop has certain organizational benefits as well:

  • Relative to other traditional solutions, Hadoop is quite cost-effective because of its seamless scaling capabilities across large volumes of data
  • Expedited access to new data sources which allows an organization to reach its full potential
  • Boosts the security of your system as Hadoop boasts of a feature called HBase security
  • Hadoop enables organizations to run applications on thousands of nodes

Given the ease with which it allows you to make sense of huge volumes of data and leverage frameworks to transform the same into actionable insights, training and certification courses for Hadoop & Big Data are in great demand in the field of data science.

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What You Will Learn

Prerequisites

Before undertaking a Big Data and Hadoop course, a candidate is recommended to have a basic knowledge of programming languages like Python, Scala, Java and a better understanding of SQL and RDBMS.

Who should attend

  • Data Architects
  • Data Scientists
  • Developers
  • Data Analysts
  • BI Analysts
  • BI Developers
  • SAS Developers
  • Others who analyze Big Data in Hadoop environment
  • Consultants who are actively involved in a Hadoop Project
  • Java software engineers who develop Java MapReduce applications for Hadoop 2.0.

KnowledgeHut Experience

Instructor-led Live Classroom

Interact with instructors in real-time— listen, learn, question and apply. Our instructors are industry experts and deliver hands-on learning.

Curriculum Designed by Experts

Our courseware is always current and updated with the latest tech advancements. Stay globally relevant and empower yourself with the latest training!

Learn through Doing

Learn theory backed by practical case studies, exercises and coding practice. Get skills and knowledge that can be effectively applied.

Mentored by Industry Leaders

Learn from the best in the field. Our mentors are all experienced professionals in the fields they teach.

Advance from the Basics

Learn concepts from scratch, and advance your learning through step-by-step guidance on tools and techniques.

Code Reviews by Professionals

Get reviews and feedback on your final projects from professional developers.

Curriculum

Learning objectives:

This module will introduce you to the various concepts of big data analytics, and the seven Vs of big data—Volume, Velocity, Veracity, Variety, Value, Vision, and Visualization. Explore big data concepts, platforms, analytics, and their applications using the power of Hadoop 3.

Topics:

  • Understanding Big Data
  • Types of Big Data
  • Difference between Traditional Data and Big Data
  • Introduction to Hadoop
  • Distributed Data Storage In Hadoop, HDFS and Hbase
  • Hadoop Data processing Analyzing Services MapReduce and spark, Hive Pig and Storm
  • Data Integration Tools in Hadoop
  • Resource Management and cluster management Services

Hands-on: No hands-on

Learning Objectives:

Here you will learn the features in Hadoop 3.x and how it improves reliability and performance. Also, get introduced to MapReduce Framework and know the difference between MapReduce and YARN.

Topics:

  • Need of Hadoop in Big Data
  • Understanding Hadoop And Its Architecture
  • The MapReduce Framework
  • What is YARN?
  • Understanding Big Data Components
  • Monitoring, Management and Orchestration Components of Hadoop Ecosystem
  • Different Distributions of Hadoop
  • Installing Hadoop 3

Hands-on: Install Hadoop 3.x

Learning Objectives: Learn to install and configure a Hadoop Cluster.

Topics:

  • Hortonworks sandbox installation & configuration
  • Hadoop Configuration files
  • Working with Hadoop services using Ambari
  • Hadoop Daemons
  • Browsing Hadoop UI consoles
  • Basic Hadoop Shell commands
  • Eclipse & winscp installation & configurations on VM

Hands-on: Install and configure eclipse on VM

Learning Objectives:

Learn about various components of the MapReduce framework, and the various patterns in the MapReduce paradigm, which can be used to design and develop MapReduce code to meet specific objectives.

Topics:

  • Running a MapReduce application in MR2
  • MapReduce Framework on YARN
  • Fault tolerance in YARN
  • Map, Reduce & Shuffle phases
  • Understanding Mapper, Reducer & Driver classes
  • Writing MapReduce WordCount program
  • Executing & monitoring a Map Reduce job

Hands-on :Use case - Sales calculation using M/R

Learning Objectives:

Learn about Apache Spark and how to use it for big data analytics based on a batch processing model. Get to know the origin of DataFrames and how Spark SQL provides the SQL interface on top of DataFrame.

Topics:

  • SparkSQL and DataFrames
  • DataFrames and the SQL API
  • DataFrame schema
  • Datasets and encoders
  • Loading and saving data
  • Aggregations
  • Joins

Hands-on:

Look at various APIs to create and manipulate DataFrames and dig deeper into the sophisticated features of aggregations, including groupBy, Window, rollup, and cubes. Also look at the concept of joining datasets and the various types of joins possible such as inner, outer, cross, and so on

Learning Objectives:

Understand the concepts of the stream-processing system, Spark Streaming, DStreams in Apache Spark, DStreams, DAG and DStream lineages, and transformations and actions.

Topics:

  • A short introduction to streaming
  • Spark Streaming
  • Discretized Streams
  • Stateful and stateless transformations
  • Checkpointing
  • Operating with other streaming platforms (such as Apache Kafka)
  • Structured Streaming

Hands-on: Process Twitter tweets using Spark Streaming

Learning Objectives:

Learn to simplify Hadoop programming to create complex end-to-end Enterprise Big Data solutions with Pig.

Topics:

  • Background of Pig
  • Pig architecture
  • Pig Latin basics
  • Pig execution modes
  • Pig processing – loading and transforming data
  • Pig built-in functions
  • Filtering, grouping, sorting data
  • Relational join operators
  • Pig Scripting
  • Pig UDF's

Learning Objectives:

Learn about the tools to enable easy data ETL, a mechanism to put structures on the data, and the capability for querying and analysis of large data sets stored in Hadoop files.

Topics:

  • Background of Hive
  • Hive architecture
  • Hive Query Language
  • Derby to MySQL database
  • Managed & external tables
  • Data processing – loading data into tables
  • Hive Query Language
  • Using Hive built-in functions
  • Partitioning data using Hive
  • Bucketing data
  • Hive Scripting
  • Using Hive UDF's

Learning Objectives:

Look at demos on HBase Bulk Loading & HBase Filters. Also learn what Zookeeper is all about, how it helps in monitoring a cluster & why HBase uses Zookeeper.

Topics:       

  • HBase overview
  • Data model
  • HBase architecture
  • HBase shell
  • Zookeeper & its role in HBase environment
  • HBase Shell environment
  • Creating table
  • Creating column families
  • CLI commands – get, put, delete & scan
  • Scan Filter operations

Learning Objectives:

Learn how to import and export data between RDBMS and HDFS.

Topics:

  • Importing data from RDBMS to HDFS
  • Exporting data from HDFS to RDBMS
  • Importing & exporting data between RDBMS & Hive tables

Learning Objectives:

Understand how multiple Hadoop ecosystem components work together to solve Big Data problems. This module will also cover Flume demo, Apache Oozie Workflow Scheduler for Hadoop Jobs.

Topics:

  • Overview of Oozie
  • Oozie Workflow Architecture
  • Creating workflows with Oozie
  • Introduction to Flume
  • Flume Architecture
  • Flume Demo

Learning Objectives:

Learn to constantly make sense of data and manipulate its usage and interpretation; it is easier if we can visualize the data instead of reading it from tables, columns, or text files. We tend to understand anything graphical better than anything textual or numerical.

Topics:

  • Introduction
  • Tableau
  • Chart types
  • Data visualization tools

Hands-on: Use Data Visualization tools to create a powerful visualization of data and insights.

Learning Objectives:

Learn a simple way to access servers, storage, databases, and a broad set of application services over the internet.

Topics:

  • Cloud computing basics
  • Concepts and terminology
  • Goals and benefits
  • Risks and challenges
  • Roles and boundaries
  • Cloud characteristics
  • Cloud delivery models
  • Cloud deployment models

Hands-on: Implement Cloud computing and deploy models.

Meet your instructors

Tarun

Tarun Sukhani

Director

TarunSukhani is an IT executive, educator, author, speaker, data scientist, security expert, agile coach, polyglot coder, and entrepreneur with over 20 years of combined professional experience both in the U.S. and internationally. As a seasoned veteran, his expertise lies in leading teams and being a counsellor and mentor in the design and delivery of highly scalable, concurrent, and performant enterprise software solutions with budgets of up to $100 million. 
He is adept at building productive, self-managing agile teams with predictable velocities and delivery timeframes. Particularly skilled in all phases of the SDLC/ALM, Tarun specializes in Agile (XP, SAFe, Lean, Scrum, Kanban, and Scrumban) and traditional (PMI and PRINCE2) project management frameworks and methodologies and is an expert tutor who brings out the best in his students. He is a much sought-after corporate trainer  for many organizations, with many niche certifications under his belt, including Raspberry Pi IoT with Node-Red, Hydroponics and Aquaponics, R Statistics and several others.

View Profile

Project

Analysis of Aadhar

Aadhar card Database is the largest biometric project of its kind currently in the world. The Indian government needs to analyse the database, divide the data state-wise and calculate how many people are still not registered, how many cards are approved and how they can bifurcate it according to gender, age, location, etc. 

Read More

Analyzing in Banking Sector (CITI Bank)

The Citi group of banks is one of the world’s largest providers of financial services, In recent years, they adopted a fully Big Data-driven approach to drive business growth and enhance the services provided to customers because traditional systems are not able to handle the huge amount of data pouring in. Using Hadoop, they will be storing and analyzing banking data to come up with multiple insights. 

Read More

E-commerce Website based Analysis (Clickstream Analysis)

On Ecommerce Web sites, clickstream analysis is the process of collecting, analyzing and reporting aggregate data about which pages a website visitor visits and in what order. With increasing number of ecommerce businesses, there is a need to track and analyse clickstream data. When using traditional databases to load and process clickstream data, there are several complexities in storing and streaming customer information and it also requires a huge amount of processing time to analyse and visualize it. 

Read More

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FAQs

The Course

Hadoop has now become the de facto technology for storing, handling, evaluating and retrieving large volumes of data. Big Data analytics has proven to provide significant business benefits and more and more organizations are seeking to hire professionals who can extract crucial information from structured and unstructured data. KnowledgeHut brings you a full-fledged course on Big Data Analytics and Hadoop development that will teach you how to develop, maintain and use your Hadoop cluster for organizational benefit.

This course will prepare you for everything you need to learn about Big Data while gaining practical experience on Hadoop.

After completing our course, you will be able to understand:

  • What is Big Data, its need and applications in business
  • The tools used to extract value from Big data
  • The basics of Hadoop including fundamentals of HDFs and MapReduce
  • Navigating the Hadoop Ecosystem
  • Using various tools and techniques to analyse Big Data
  • Extracting data using Pig and Hive
  • How to increase sustainability and flexibility across the organization’s data sets
  • Developing Big Data strategies for promoting business intelligence

There are no restrictions but participants would benefit if they have elementary computer knowledge.

Yes, KnowledgeHut offers this training online.

Your instructors are Hadoop experts who have years of industry experience.

Finance Related

Any registration cancelled within 48 hours of the initial registration will be refunded in FULL (please note that all cancellations will incur a 5% deduction in the refunded amount due to transactional costs applicable while refunding) Refunds will be processed within 30 days of receipt of written request for refund. Kindly go through our Refund Policy for more details: https://www.knowledgehut.com/refund-policy

KnowledgeHut offers a 100% money back guarantee if the candidate withdraws from the course right after the first session. To learn more about the 100% refund policy, visit our Refund Policy.

The Remote Experience

In an online classroom, students can log in at the scheduled time to a live learning environment which is led by an instructor. You can interact, communicate, view and discuss presentations, and engage with learning resources while working in groups, all in an online setting. Our instructors use an extensive set of collaboration tools and techniques which improves your online training experience.

Minimum Requirements:

  •   Operating system such as Mac OS X, Windows or Linux
  •   A modern web browser such as FireFox, Chrome
  •   Internet Connection

Have More Questions?

Big Data and Hadoop Course Course in Irvine, CA

big data and hadoop training in irvine

Irvine is a city in Orange County, California, the United States. Irvine is home to several higher education institutions including the University of California, Irvine, Concordia University, Irvine Valley College, the Orange County Center of the University of Southern California (USC), and campuses of California State University Fullerton. Many fortunes companies headquarters and offices are situated in Irvine. The most important economic activity in the Irvine region is the industrialised area as well as IT companies. Enrol for a great future with big data and hadoop Certification in irvineprovided by KnowledgeHut academy.


About the big data and hadoop Course in irvine

With each mouse click or tap on the mobile or PCs we make data. Big Data is a large amount of data consisting of structure, unstructured data that can not be stored or processed by the usual methods. Hadoop is an open-source tool for storing, handling, evaluating and retrieving large volumes of data. With the comprehensive online interactive instructor-led classes and hands-on practice, you will be able to secure a position with leading companies like Microsoft, Google, Cisco, etc. To get more information about the cost, schedule, and availability of the big data and hadoop Online course in irvine visit our website.


Why should you take up the Big data and Hadoop course in Irvine?

Hadoop is the most scalable and cost-effective tool to handle big data which consists of structured and unstructured data. With the 30 hours of live coaching sessions, full 28 hours of hands-on training, three live projects related to banking, governmental sectors and eCommerce website, will make you understand Big Data and their types and their applications using the power of Hadoop. According to the research data, around 26% of the analysts are applying the use of Hadoop in their daily task. There are numerous benefits for the organisation by Big data and Hadoop frameworks so this has increased the employment benefits, and the normal pay of the Hadoop Professional is $133,296 per annum.


The KnowledgeHut advantage for Big data and Hadoop online course in Irvine

KnowledgeHut is a great learning platform for the beginners as well as the experienced learners. All our tutors are experienced professionals and passed out from prestigious institutes. They are experts in the fields they teach and are ready to interact and gives you feedback and reviews on your work. You will be prepared for interviews questions and replies, along with the basic to advanced knowledge. Our course materials are updated with the latest version of tools and techniques, and you can also download the course theoretical notes.


Now learn at your own pace. Join here for the Big data and Hadoop Training course in Irvineas early as possible.