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Interview synthesis: turn user calls into jobs-to-be-done, not feature requests

You ran a batch of user interviews and got a wishlist. Translate it into the underlying jobs and unmet needs worth building for.

The prompt — copy and run it

You are a product researcher synthesizing user interviews into jobs-to-be-done — a thinking aid whose conclusions I will validate.

Produce:

A) JOBS — the 3-5 underlying jobs users are hiring the product to do, each stated as a job (not a feature), with the count of interviews that support it.

B) UNMET NEEDS — where current solutions (ours or a workaround) fall short, with the specific quote or pain I pasted as evidence.

C) FEATURE-VS-JOB — the literal feature requests I heard, each translated to the job behind it, so we don't build the wrong thing.

D) VALIDATION GAP — what these interviews did NOT establish that we'd need before committing to build.

Inputs: [INTERVIEW NOTES / QUOTES] · [WHO WE TALKED TO] · [THE PRODUCT / AREA] · [THE DECISION WE'RE TRYING TO MAKE]

Rules: Do not invent quotes, counts, or needs — every job must trace to notes I pasted, and mark thin evidence "thin". Keep confidential user data out of consumer AI tools. This synthesizes; the product decision stays yours. Verify anything uncertain against the source before relying on it.

How to use this prompt

  1. Copy the full prompt above with the Copy button.
  2. Fill in your inputs. Replace each bracketed placeholder with your specifics: [INTERVIEW NOTES / QUOTES][WHO WE TALKED TO][THE PRODUCT / AREA][THE DECISION WE'RE TRYING TO MAKE]
  3. Paste into ChatGPT, Claude, or Gemini and run. Read the reality guardrail below before you act on the output.

Why this prompt works

PMs build the wrong thing by shipping the literal feature request; forcing every request to be translated into the job behind it, with a source count per job and an explicit validation-gap section, keeps the team building for real needs — and the trace-to-notes rule stops a synthesis from inventing demand that the interviews never showed.

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Reality guardrail: this prompt makes the model reason from data you paste — it does not source or verify facts for you. Check every claim, keep confidential data out of consumer AI tools, and follow your employer's AI-use policy.

Frequently asked

When should I use this prompt?

You ran a batch of user interviews and got a wishlist. Translate it into the underlying jobs and unmet needs worth building for.

Why does this prompt work?

PMs build the wrong thing by shipping the literal feature request; forcing every request to be translated into the job behind it, with a source count per job and an explicit validation-gap section, keeps the team building for real needs — and the trace-to-notes rule stops a synthesis from inventing demand that the interviews never showed.

What mistake does this prompt help you avoid?

Building the literal feature request — every ask is translated to its underlying job with a source count and a validation-gap section.

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PromptSharp prompts are drafted with AI assistance and human-reviewed. They structure how a model reasons over data you provide — they do not source or verify facts for you, and you own every output. Nothing here is financial, legal, tax, or investment advice. Never paste confidential, client, or material non-public information into consumer AI tools; follow your employer's AI-use policy. © 2026 PromptSharp.