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 Associate Certified Analytics Professional aCAP 4 Aug Online QR Code
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Data Management and Business Intelligence

Associate Certified Analytics Professional aCAP


REF : G2637 DATES: 4 - 8 Aug 2024 VENUE: Online FEE : 2250 

Overview:

Introduction:

This program is designed to prepare participants for the certification exam only.

This training program is designed to enhance participants' knowledge and skills in analytics. Through it, they will gain a deep understanding of analytical methods, tools, and best practices essential for effective data-driven decision-making.

Program Objectives:

By the end of this program, participants will be able to:

  • Grasp the core concepts and principles of data analytics.

  • Utilize various techniques to analyze data and generate insights.

  • Create and validate data models to support decision-making.

  • Effectively communicate findings and recommendations to stakeholders.

  • Gain the knowledge and skills necessary to pass the aCAP certification exam.

Targeted Audience:

  • Aspiring data analysts seeking certification.

  • Professionals transitioning into analytics roles.

  • Managers looking to enhance their data-driven decision-making skills.

  • IT professionals interested in analytics.

Program Outlines:

Unit 1:

Data Analytics Fundamentals:

  • Overview of data analytics and its importance in business.

  • Understanding different data types and sources.

  • Techniques for collecting and sourcing data.

  • Ensuring data quality and governance.

  • Overview of commonly used analytical tools and software.

Unit 2:

Statistical and Quantitative Analysis:

  • Understanding measures of central tendency, variability, and distribution.

  • Conducting hypothesis testing and confidence interval estimation.

  • Applying linear and logistic regression techniques.

  • Analyzing time series data for trends and seasonality.

  • Utilizing probability distributions and building predictive models.

Unit 3:

Data Management and Preparation:

  • Techniques for cleaning and preparing data for analysis.

  • Methods for transforming and normalizing data.

  • Combining data from different sources for comprehensive analysis.

  • Techniques for exploring and visualizing data.

  • Creating new features to improve model performance.

Unit 4:

Advanced Analytical Techniques:

  • Introduction to machine learning concepts and algorithms.

  • Techniques for classification and regression tasks.

  • Methods for clustering and association analysis.

  • Basics of NLP and text analytics.

  • Techniques for evaluating and validating models.

Unit 5:

Communicating Analytical Results

  •  Principles and best practices for effective data visualization.

  •  Hands-on practice with tools like Tableau, Power BI, or Python..

  •  Techniques for presenting data in a compelling narrative.

  •  Creating insightful reports and dashboards.

  •  Best practices for presenting findings and recommendations to diverse audiences.

  • Prepare for the certifiation exam.

Note: This program is designed to prepare participants for the certification exam only.