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24 Feb 2026

Step 1: Understanding AI Fundamentals for Scrum

Author: Rod Claar  /  Categories: Generative AI  / 

Core Concepts Every Scrum Team Should Know

1. Large Language Models (LLMs)
Systems like ChatGPT generate responses by predicting likely word sequences based on training data.
They do not β€œunderstand” intent the way humans do.

Implication: Output must be reviewed and validated.


2. Deterministic vs. Probabilistic Systems
Traditional software produces predictable outputs from defined logic.
AI systems produce statistically likely outputs.

Implication: AI suggestions are options, not commitments.


3. Hallucination Risk
AI may produce confident but incorrect answers.

Implication: Never treat AI output as authoritative without verification.


4. Prompt Sensitivity
Small changes in prompts can significantly alter output quality.

Implication: Teams must treat prompting as a skill.


5. Human Accountability
AI can assist.
The Scrum Team remains accountable for the Increment.

AI does not own quality.
Developers do.


Why This Matters in Scrum

Scrum is built on empiricism: transparency, inspection, and adaptation.

AI fits well inside that loopβ€”if treated as:

  • A collaborator

  • A generator of options

  • A speed amplifier

Not as a decision-maker.


Exercise

  1. As a team, define AI in one sentence.

  2. List three risks of using AI in your workflow.

  3. Identify one area in your current Sprint where AI could assistβ€”but not replaceβ€”human judgment.

  4. Agree on one validation rule for AI-generated output.

Clarity first.
Tools second.

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