
Generative AI: Revolutionizing Business Analysis Techniques Course
Generative AI is reshaping how business analysts work — and this course puts you ahead of the curve. Learn to apply AI across requirements, process modeling, data analysis, and documentation to deliver faster, sharper results. From prompt engineering to strategic AI integration, every skill is grounded in real BA practice.
What you will learn:
Apply proven prompt engineering patterns to produce reliable, high-quality BA outputs.
Extract, structure, and validate requirements from documents and stakeholder sessions using AI.
Generate and compare process redesign scenarios to identify the strongest improvement options.
Build AI-assisted business cases, decision frameworks, and executive-ready recommendations.
Establish governance standards and quality controls for AI-augmented BA deliverables.
Measure and communicate the business value of AI integration across analyst workflows.
How you study in a practical way Generative AI: Revolutionizing Business Analysis Techniques Course
How you practice Generative AI: Revolutionizing Business Analysis Techniques Course
For companies who want to train their team
With Dedika for businesses, the course includes exercises and examples tailored to your own business and the way your company needs.
Course content
8 Chapters • 33 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Generative AI for Business
Foundations of Generative AI for Business
Lesson 1 • Risks, Limitations, and Ethical Boundaries
Covers hallucination, bias, data privacy, and misuse risks inherent in generative AI. Grounds analysts in responsible use before applying tools to real business problems.
Lesson 2 • Core Generative AI Modalities
Surveys text, image, code, audio, and multimodal generation capabilities. Helps analysts match the right modality to specific business analysis tasks.
Lesson 3 • What Generative AI Actually Is
Defines generative AI, contrasts it with traditional ML, and maps its core mechanisms. Provides the conceptual baseline required for every technique introduced later.
Lesson 4 • Business Value Drivers of Generative AI
Identifies where generative AI creates measurable business value and why analysts are central to capturing it. Connects AI capabilities to analyst responsibilities.
Chapter 2HideHide detailsSee detailsPrompt Engineering for Business Analysts
Prompt Engineering for Business Analysts
Lesson 1 • Prompt Testing and Quality Control
Teaches systematic evaluation of prompt outputs for accuracy, completeness, and bias. Connects prompt quality to downstream BA deliverable reliability.
Lesson 2 • Building a Reusable Prompt Library
Guides analysts in cataloging, versioning, and sharing effective prompts across teams. Transforms individual prompt skills into organizational assets.
Lesson 3 • Prompting Strategies and Patterns
Introduces zero-shot, few-shot, chain-of-thought, and other proven prompting patterns. Analysts learn when each pattern fits different BA problem types.
Lesson 4 • Anatomy of an Effective Prompt
Breaks down the structural components of prompts that consistently yield useful outputs. Establishes the design vocabulary used throughout the chapter.
Chapter 3HideHide detailsSee detailsAI-Augmented Requirements Elicitation
AI-Augmented Requirements Elicitation
Lesson 1 • Generating Interview Questions with AI
Uses AI to draft targeted stakeholder interview guides aligned to project scope. Reduces preparation time while improving question depth and coverage.
Lesson 2 • Extracting Requirements from Documents
Applies AI to parse contracts, policies, and legacy documents for embedded requirements. Teaches analysts to structure and validate extracted content.
Lesson 3 • AI-Assisted Workshop Facilitation
Integrates AI tools into live and async workshops to capture, organize, and synthesize stakeholder input in real time. Improves workshop output quality and speed.
Lesson 4 • Structuring and Validating Requirements
Uses AI to format raw requirements into standard templates and flag gaps or conflicts. Ensures elicited content meets quality standards before analysis begins.
Chapter 4HideHide detailsSee detailsGenerative AI for Business Process Analysis
Generative AI for Business Process Analysis
Lesson 1 • AI-Driven Process Discovery
Applies AI to extract process flows from interviews, logs, and documents without manual mapping. Builds the process baseline needed for all subsequent analysis.
Lesson 2 • AI-Generated Process Redesign Options
Prompts AI to generate multiple to-be process scenarios and evaluate trade-offs. Gives analysts a structured method for presenting redesign choices to stakeholders.
Lesson 3 • Generating and Refining Process Models
Uses AI to draft BPMN diagrams, swimlane charts, and flowcharts from text descriptions. Accelerates model creation while maintaining notation accuracy.
Lesson 4 • Root Cause and Gap Analysis with AI
Leverages AI to identify process bottlenecks, failure points, and capability gaps from process data. Connects findings directly to improvement opportunities.
Chapter 5HideHide detailsSee detailsData Analysis and Insight Generation with AI
Data Analysis and Insight Generation with AI
Lesson 1 • Validating AI-Generated Insights
Establishes verification methods to confirm AI-produced insights against source data and domain knowledge. Prevents flawed insights from reaching decision makers.
Lesson 2 • Exploratory Analysis Using Generative AI
Uses AI to generate descriptive statistics, trend summaries, and anomaly flags from structured data. Teaches analysts to direct AI exploration efficiently.
Lesson 3 • Translating Data into Business Narratives
Applies AI to convert analytical findings into clear, audience-specific business narratives. Bridges the gap between data outputs and stakeholder understanding.
Lesson 4 • Preparing Data for AI-Assisted Analysis
Covers data cleaning, formatting, and context-setting steps that maximize AI analysis quality. Establishes good data hygiene habits before any AI tool is applied.
Chapter 6HideHide detailsSee detailsAI-Powered Documentation and Reporting
AI-Powered Documentation and Reporting
Lesson 1 • Drafting Business Requirements Documents
Uses AI to generate structured BRD sections from elicited requirements and process models. Connects documentation directly to earlier elicitation and analysis outputs.
Lesson 2 • Automating Status Reports and Meeting Notes
Leverages AI to transform raw notes and data into formatted status reports and meeting minutes. Frees analyst time for higher-value analytical work.
Lesson 3 • Writing User Stories and Acceptance Criteria
Applies AI to convert requirements into well-formed user stories with testable acceptance criteria. Ensures agile teams receive clear, actionable backlog items.
Lesson 4 • Creating Stakeholder Presentations with AI
Uses AI to structure slide narratives, generate talking points, and tailor messaging by audience. Produces presentation-ready content from existing BA artifacts.
Chapter 7HideHide detailsSee detailsAI-Enhanced Decision Support and Modeling
AI-Enhanced Decision Support and Modeling
Lesson 1 • Scenario Planning and What-If Analysis
Applies AI to generate plausible future scenarios and stress-test assumptions across business variables. Equips analysts to present risk-aware recommendations.
Lesson 2 • Presenting Recommendations to Stakeholders
Teaches analysts to use AI to tailor recommendation framing, anticipate objections, and prepare supporting evidence. Maximizes the persuasive impact of analytical work.
Lesson 3 • Structuring Decision Problems with AI
Uses AI to decompose complex decisions into criteria, options, and trade-offs. Establishes a rigorous decision architecture before modeling begins.
Lesson 4 • Building AI-Assisted Business Cases
Guides analysts in using AI to draft cost-benefit analyses, ROI projections, and investment rationales. Produces compelling, data-grounded business case documents.
Chapter 8HideHide detailsSee detailsStrategic AI Integration in BA Practice
Strategic AI Integration in BA Practice
Lesson 1 • Governance, Standards, and Quality Assurance
Establishes policies for AI tool use, output review, and quality standards within BA teams. Ensures consistent, trustworthy AI-assisted deliverables across projects.
Lesson 2 • Building Organizational AI Capability
Guides analysts in training peers, creating learning resources, and fostering a culture of continuous AI experimentation. Scales individual expertise into team-wide capability.
Lesson 3 • Measuring and Communicating AI-Driven Value
Defines metrics for tracking productivity, quality, and business impact of AI-augmented BA work. Enables analysts to demonstrate and sustain executive support for AI initiatives.
Lesson 4 • Designing AI-Augmented BA Workflows
Maps generative AI touchpoints into existing BA processes without disrupting proven practices. Creates hybrid human-AI workflows that maximize analyst effectiveness.
Lesson 5 • Assessing AI Readiness in Your Organization
Evaluates data maturity, tool availability, and cultural readiness to adopt AI-augmented BA practices. Produces a realistic baseline for integration planning.
Your valid completion certificate
This course is for you:
Business analysts: ready to modernize their analytical toolkit with AI.
Systems analysts: looking to handle complex requirements gathering more efficiently.
Product managers: wanting AI-driven insights to sharpen their decision-making process.
Project managers: seeking to streamline documentation and stakeholder reporting with AI.
IT consultants: aiming to offer clients AI-augmented business analysis capabilities.
Career changers: transitioning into business analysis and wanting a competitive AI edge.
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