Course information

CompTIA Data+ Course Outline

Module 1: Identifying Basic Concepts of Data Schemas

  • Identify the Key Differences Between Relational and Non-Relational Databases
    • Relational Databases
    • Non-Relational Databases

Lab: Navigating and Understanding Database Design

  • Identify the Way We Use Tables, Primary Keys, and Normalisation
    • Normalisation
    • Normalising Data
    • Relationships in Data
    • Types of Relationships
    • Referential Integrity
    • Denormalisation

Module 2: Understanding Different Data Systems

  • Describe Types of Data Processing and Storage Systems
    • Types of Data Processing
    • Source Systems
    • Data Warehouses and Data Marts
    • Schemas Used in Data Warehousing
    • Fact Table
    • Dimension Table
    • Star Schema
    • Snowflake Schema
    • Data Lakes and Lakehouses
  • Explain How Data Changes
    • Overview of Slowly Changing Dimensions
    • Impact of Slowly Changing Dimensions

Module 3: Understanding Data Types and Characteristics of Data

  • Understand Types of Data
    • Quantitative Data
    • Qualitative Data
    • Why do the Data Types Matter?
  • Break Down the Field Data Types
    • Introduction to Field Data Types
    • Text/Alphanumeric Field Data Types
    • Date Data Type
    • Number Date Types
    • Currency Data Type
    • Boolean Data Type
    • Data Type Conversion

Lab: Understanding Data Types and Conversion

Lab: Understanding Data Structure and Types and Using Basic Statements

Module 4: Comparing and Contrasting Different Data Structures, Formats, and Markup Languages

  • Differentiate Between Structured Data and Unstructured Data
    • Structured Data
    • Unstructured Data
  • Recognise Different File Formats
    • Delimited Files
    • Why We Use Delimited Files?
    • Flat Files
    • File Extensions

Lab: Working with Different File Formats

  • Understand the Different Code Languages Used for Data
    • Structured Query Language (SQL)
    • Structured Hyper Text Markup Language (HTML)
    • Extensible Markup Language (XML)
    • JavaScript Object Notation (JSON)

Module 5: Explaining Data Integration and Collection Methods

  • Understand the Processes of Extracting, Transforming, and Loading Data
    • Extracting Data
    • Transforming Data
    • Loading Data
    • Full Load and Delta Load
    • Extract, Load, Transform (ELT)
  • Explain API/Web Scraping and Other Collection Methods
    • Application Programming Interface (API)
    • Web Services
    • Web Scraping
    • Machine Data
  • Collect and Use Public Data
    • Overview of Public and Publicly-Available Data
    • Finding Public and Publicly-Available Data

Lab: Using Public Data

  • Use and Collect Survey Data
    • Considerations for Using Surveys
    • Question Design
    • Types of Survey Answers

Module 6: Identifying Common Reasons for Data Cleansing and Profiling Datasets

  • Learn to Profile Data
    • Steps of Data Profiling
    • Data Profiling Tools and Techniques

Lab: Profiling Data Sets

  • Address Redundant and Duplicated Data
    • Redundant Data
    • Duplicated Data
    • Unnecessary Fields

Lab: Addressing Redundant and Duplicated Data

  • Work with Missing Values
    • Causes of Null Values
    • Filtering Null Values
    • Replacing Missing Values

Lab: Addressing Missing Values

  • Address Invalid Data
    • Identifying Invalid Data
    • Removing Invalid Data
    • Replacing Invalid Data with Valid Data
  • Convert Data to Meet Specifications
    • Data That Does Not Meet Specifications
    • Converting Data Types

Lab: Preparing Data for Use

Module 7: Executing Different Data Manipulation Techniques

  • Recode Data and Derived Variables
    • Recoding Numerical and Categorical Data
    • Derived Variables
    • Imputing Values
    • Reduction in Data Sets
    • Masking Values

Lab: Recoding Data

  • Transpose and Append Data
    • Transposing Data
    • Appending Data
  • Query Data
    • Querying Data
    • Types of Joins

Lab: Working with Queries and Join Types

Module 8: Explain Common Techniques for Data Manipulation and Optimisation

  • Use Functions to Manipulate Data
    • Text Functions
    • Text Functions - Left, Right, Mid
    • Text Functions - Upper, Lower, and Proper
    • Combining Data Fields
    • Parsing Strings for Information
    • Date Functions
    • Logical Functions and Conditional Formatting
    • Aggregation and the Basic Types of Aggregate Functions
    • System Functions
  • Use Common Techniques for Query Optimisation
    • Filtering Data
    • Parameterisation
    • Indexing Data
    • Temporary Tables
    • Sub Querying and Subsets of Information
    • Query Execution Plan

Lab: Building Queries and Transforming Data

Module 9: Applying Descriptive Statistical Methods

  • Use Measures of Central Tendency
    • Measures of Central Tendency Overview
    • Mean
    • Median
    • Mode

Lab: Using the Measures of Central Tendency

  • Use Measures of Dispersion
    • Overview of the Measures of Dispersion
    • Range of Data
    • Standard Deviation
    • Z-Scores
    • Distribution of a Data Set

Lab: Using the Measures of Variability

  • Use Frequencies and Percentages
    • Frequency
    • Percentage Difference
    • Percentage Change

Module 10: Describing Key Analysis Techniques

  • Get Started with Analysis
    • Research Questions
    • Sample Research Questions
    • Data Sources and Collection Methods
    • Observations
  • Recognise Types of Analyses
    • Exploratory Analysis
    • Performance Analysis
    • Gap Analysis
    • Trend Analysis
    • Link Analysis

Module 11: Understanding the Use of Different Statistical Methods

  • Understand the Importance of Statistical Tests
    • Confidence Intervals
    • T-Tests and P-Values
  • Break Down the Hypothesis Test
    • Null Hypothesis
    • Understanding the Results of Hypothesis Testing
  • Understand Tests and Methods to Determine Relationships Between Variables
    • Chi-Square
    • Chi-Square Tests
    • Simple Linear Regression
    • Correlation
    • Use Excel to Apply Statistical Methods

Lab: Analysing Data

Module 12: Using the Appropriate Type of Visualisation

  • Use Basic Visuals
    • Pie Chart
    • Treemaps
    • Column and Bar Charts
    • Line Graphs

Lab: Building Basic Visuals to Make Visual Impact

  • Build Advanced Visuals
    • Stacked Column/Bar Charts
    • Line Graphs with Multiple Lines
    • Combination Charts
    • Scatter Plots
    • Bubble Charts
    • Histograms
    • Waterfall Charts
  • Build Maps with Geographical Data
    • Preparing Geo Fields for Mapping
    • Geographic Maps

Lab: Building Maps with Geographical Data

  • Use Visuals to Tell a Story
    • Heat Maps
    • Word Clouds
    • Infographics

Lab: Using Visuals to Tell a Story

Module 13: Expressing Business Requirements in a Report Format

  • Consider Audience Needs When Developing a Report
    • Audience
    • Consumer Types
  • Describe Data Source Considerations for Reporting
    • Documenting the Source Data
    • Determining Access to Data
    • Developing Views of the Data
    • Data Fields and Attributes
  • Describe Considerations for Delivering Reports and Dashboards
    • Determining How Visuals Will Be Viewed
    • Determining How Data Will Be Delivered
    • Frequency of Reporting
    • Recurring Reports
  • Develop Reports or Dashboards
    • Visualisation Layouts
    • Mock-up and Wireframing for Design
    • Types of Visuals
    • Types of Dashboard Navigation
  • Understand Ways to Sort and Filter Data
    • Sorting Data
    • Filter Methods for Visuals
    • Filtering by Date Ranges

Lab: Filtering Data

Module 14: Designing Components for Reports and Dashboards

  • Design Elements for Reports/Dashboards
    • Branding Guidelines
    • Appropriate Colour Schemes
    • Appropriate Fonts and Layout
    • Naming Conventions

Lab: Designing Elements for Dashboards

  • Utilise Standard Elements
    • Standard Information and Formatting Elements for Reports
    • Other Special Fields
    • Watermarks
    • Important Dates
  • Create a Narrative and Other Written Elements
    • Narrative
    • Instructions for Using the Report/Dashboard
    • Other Supporting Materials
  • Understand Deployment Considerations
    • Techniques for Dashboard Optimisation
    • Expand and Collapse Options for Information
    • Drill Through
    • Tooltips
    • Other Considerations
    • Deploy to Production

Module 15: Distinguish Different Report Types

  • Understand How Updates and Timing Affect Reporting
    • Static Vs Dynamic Reports
    • Point-in-Time Reporting
    • Real-Time Reporting
  • Differentiate Between Types of Reports
    • Operational and Compliance Reports
    • Tactical and Research-Driven Reporting
    • Ad-Hoc Reporting
    • Self-Service Reporting

Lab: Building an Ad Hoc Report

Lab: Visualising Data

Module 16: Summarising the Importance of Data Governance

  • Define Data Governance
    • Lifecycle of Data
    • Roles Within a Data Governance Team
    • Jurisdiction Requirements
    • Regulations and Compliance
    • Data Classifications
  • Understanding Access Requirements and Policies
    • Data Use Agreements
    • Release Approvals
    • Data Retention and Destruction Policies
  • Understand Security Requirements
    • Data Processing
    • Data Transmission
    • Data Encryption
    • De-Identification and Masking of Data
    • Data Breaches
    • Data Access
    • Saving Data Files and Storage Types

Lab: Building Basic Visuals to Make Visual Impact

  • Understanding Entity Relationship Requirements
    • Entity Relationship Models
    • Record Linkage Restrictions
    • Data Constraints

Module 17: Applying Quality Control to Data

  • Describe Characteristics, Rules, and Metrics of Data Quality
    • Reasons to Check Data Quality
    • Understanding Quality
    • Rules and Metrics for Data Quality
  • Identify Reasons to Quality Check Data and Methods of Data Validation
    • Data Validation Methods
    • Automated Validation
    • Data Verification Methods

Module 18: Explaining Master Data Management

  • Explain the Basics of Master Data Management
    • Master Data Management
    • Benefits of Master Data Management
    • Reasons for Master Data Management
    • Master Data Management Vs Data Warehouse
  • Describe Master Data Management Processes
    • Consolidation of Multiple Data Fields
    • Field Standardisation
    • Data Dictionary

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Who should attend this CompTIA Data+ Course?

The CompTIA Data+ Certification is a vendor-neutral certification that validates the knowledge and skills required to manage data in a variety of environments. It is designed for IT professionals who are responsible for collecting, storing, processing, and analysing data. This course can be beneficial for various professionals including:

  • Data Analysts
  • Database Administrators
  • Data Engineers
  • Business Analyst
  • Entry-level Data Scientists
  • Systems Analysts
  • IT Managers
  • Data Consultants

Prerequisites of the CompTIA Data+ Course

There are no formal prerequisites to attend the CompTIA Data+ Course, but to be eligible for the certification exam, you must have a minimum of 18-24 months of experience in a report/business analyst role, be familiar with databases and analytics tools, possess a foundational knowledge of statistics, and have experience in data visualisation.

CompTIA Data+ Course Overview

The CompTIA Data+ Certification offers a comprehensive introduction to data analytics, a critical skill in today’s data-driven business landscape. As organisations increasingly rely on data to make informed decisions, understanding data management, visualisation, and reporting has become essential. This course equips delegates with foundational knowledge to handle data effectively, making it an invaluable asset for professionals in various fields.

Proficiency in Data Analytics is crucial for professionals involved in Business Intelligence, Market Research, Operations, and any role that requires data-driven decision-making. Gaining expertise in this area enables professionals to analyse complex data sets, identify trends, and provide actionable insights, ultimately leading to better business outcomes. Therefore, mastering these skills is essential for anyone looking to advance in a data-centric role.

This 2-day training offered by The Knowledge Academy is designed to provide delegates with a solid understanding of the key concepts and tools used in data analytics. Delegates will learn how to collect, analyse, and interpret data effectively through hands-on exercises and real-world examples. This course will help delegates enhance their analytical skills, enabling them to add value to their organisations by leveraging data for strategic decision-making.

Course Objectives

  • To understand the importance of data analytics in modern business
  • To learn the basics of data management and storage
  • To explore data visualisation techniques
  • To gain proficiency in data reporting and interpretation
  • To develop skills in data-driven decision-making
  • To enhance problem-solving capabilities using data

After completing the course, delegates will be well-prepared for the CompTIA Data+ Certification exam, demonstrating their proficiency in data analytics. This certification will validate their skills and knowledge, opening up new career opportunities and advancement in the field of data analysis.

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What’s included in this CompTIA Data+ Course?

  • World-Class Training Sessions from Experienced Instructors
  • CompTIA Data+ Certificate
  • Digital Delegate Pack

Why choose us

Our Sydney venue

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Sydney is the capital of the state New South Wales in Australia. It is the most populous city in Australia with a population of 4.8 million people. It is located on the east coast of Australia around the world’s largest natural harbour. 1.5 million of Sydney’s residents were born overseas making the city one of the most multicultural cities in the world with over 250 different languages being spoken. Sydney has the largest economy in Australia and its strengths lie in finance, tourism and manufacturing. There are also a large amount of international or foreign banks and corporations in Sydney and is noted to be the leading financial hub of the Asia Pacific.Sydney hosted the 2000 Summer Olympics. Millions of tourists visit Sydney every year to see the landmarks which include Sydney Harbour, Royal National Park, Bondi Beach and Sydney Opera House. There are six universities in Sydney, which are the University of Sydney, the University of Technology, the University of New South Wales, Macquarie University, the University of Western Sydney and the Australian Catholic University. Over 5% of Sydney residents are attending a university. Sydney residents are highly educated as standard, with over 55% of the work force having completed high levels of schooling. 1.3 million people were enrolled in some sort of education during the 2011 census, 16% of these were at a university. The University of Sydney was established in 1850 and is seen as the oldest university in Australia. It is the third best university in Australia and amongst the top 30 universities in the world. The New South Wales Department of Education manages the public schools in Sydney. There are 935 preschool, primary and secondary schools in the whole of Sydney. The Sydney Technical College opened in 1878 and offers a range of vocational training and education including mechanical drawing, surgery, grammar and English skills, steam engines and mathematics. 

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90 Carillon Ave, 
Newtown NSW 2042, 
Australia

T: +61 272026926

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Experience live, interactive learning from home with The Knowledge Academy's Online Instructor-led CompTIA Data+ Course | CompTIA Training in Sydney. Engage directly with expert instructors, mirroring the classroom schedule for a comprehensive learning journey. Enjoy the convenience of virtual learning without compromising on the quality of interaction.

Unlock your potential with The Knowledge Academy's CompTIA Data+ Course | CompTIA Training in Sydney, accessible anytime, anywhere on any device. Enjoy 90 days of online course access, extendable upon request, and benefit from the support of our expert trainers. Elevate your skills at your own pace with our Online Self-paced sessions.

Experience the most sought-after learning style with The Knowledge Academy's CompTIA Data+ Course | CompTIA Training in Sydney. Available in 490+ locations across 190+ countries, our hand-picked Classroom venues offer an invaluable human touch. Immerse yourself in a comprehensive, interactive experience with our expert-led CompTIA Data+ Course | CompTIA Training in Sydney sessions.

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CompTIA Data+ Course | CompTIA Training in Sydney FAQs

CompTIA is a globally recognised non-profit organisation that offers vendor-neutral certifications in IT, covering areas such as networking, security, and cloud computing, aimed at enhancing professional skills and career prospects.
There are no formal prerequisites to attend the CompTIA Data+ Course, but to be eligible for the certification exam, you must have a minimum of 18-24 months of experience in a report/business analyst role, be familiar with databases and analytics tools, possess a foundational knowledge of statistics, and have experience in data visualisation.
This course is ideal for individuals looking to pursue a career in data analysis, including those working in data management, IT professionals, and business analysts seeking to enhance their data-related skills.
This CompTIA Data+ Training will enhance your data analysis skills, improving your ability to manage and interpret data effectively. It will increase your employability and open up opportunities in data-driven roles across various industries.
In this training course, delegates will have intensive training with our experienced instructors, a digital delegate pack consisting of important notes related to this course, and a certificate after course completion.
In this CompTIA Data+ Certification, you will learn essential data management and analysis skills, including data governance, data quality, statistical analysis, data visualisation, and using data tools to drive business insights.
This CompTIA Data+ Certification takes 2 Days to complete during which delegates participate in intensive learning sessions that cover various course topics.
The CompTIA Data+ certification is valid for three years. After this period, certified individuals must either renew the certification through continuing education or by passing the latest exam to maintain their credential.
To renew the CompTIA Data+ certification, you can earn continuing education units (CEUs) through various professional development activities or retake the latest version of the exam before the certification expires.
Yes, The Knowledge Academy offers 24/7 support via phone & email before attending, during, and after the course. Our customer support team is available to assist and promptly resolve any issues you may encounter.
The Knowledge Academy provides flexible self-paced training for this CompTIA Data+ Certification. Self-paced training is beneficial for individuals who have an independent learning style and wish to study at their own pace and convenience.
No, there is no formal exam at the end of this course. However, delegates are assessed through practical exercises and activities throughout the training to ensure they understand and can apply the concepts effectively.
Individuals with the CompTIA Data+ certification can pursue various career opportunities, including roles such as Data Analyst, Business Intelligence Analyst, Data Administrator, dAta Engineer, and IT Professional focusing on data management and analysis.
If you are unable to access your training, contact the support team at The Knowledge Academy via their customer service email or phone number provided on their website for prompt assistance and resolution of your issue.
Yes, after completing this course you will receive a certificate of completion to validate your achievement and demonstrate your proficiency in the course material.
After completing this course, you will gain skills in data analysis, data governance, data visualisation, statistical methods, data quality management, and the use of various tools to interpret and manage data effectively in a business context.
CompTIA Data+ focuses on foundational data analysis skills and vendor-neutral concepts, making it ideal for beginners. Unlike other certifications, it offers a broader understanding of data management, governance, and quality, rather than specialising in specific tools or advanced techniques.
Common challenges include mastering technical jargon, understanding data governance concepts, and applying analytical methods. Candidates can overcome these by practising with sample questions, using study guides, attending training courses, and gaining hands-on experience with data tools and scenarios.
The Knowledge Academy in Sydney stands out as a prestigious training provider known for its extensive course offerings, expert instructors, adaptable learning formats, and industry recognition. It's a dependable option for those seeking this course.
The training fees for CompTIA Data+ Coursein Sydney starts from AUD4795
The Knowledge Academy is the Leading global training provider for CompTIA Data+ Course.
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"Really good course and well organised. Trainer was great with a sense of humour - his experience allowed a free flowing course, structured to help you gain as much information & relevant experience whilst helping prepare you for the exam"

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