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Engineering & Creator

Free Algorithms Prompts for ChatGPT

A focused, hand-built library of algorithms prompts for engineering teams. Each one is structured for an LLM - role, task, constraints, output - so you can paste it into ChatGPT or Claude and get a usable algorithm design on the first try. Use them as written, or treat them as starting points to fork for your own playbook.

algorithms promptsalgorithms AI promptsChatGPT prompts for algorithmsalgorithms engineer AI prompts

Senior-grade Algorithm design

Produce a senior-level algorithm design ready to ship.

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Act as a senior algorithms engineer with 10+ years specializing in algorithms for engineering teams. I will give you the brief; you will deliver a ship-ready algorithm design.

Brief: [PASTE BRIEF HERE].
Constraints: must be specific, measurable, and grounded in algorithms best practice. Avoid generic advice and obvious tips.

Deliver:
1. The full algorithm design (the actual artifact, not a description of it).
2. Three sharpening notes - what you would test or improve first.
3. One contrarian angle most algorithms engineers miss.

Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmsseniordeliverable
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Critique my Algorithm design

Tear down an existing algorithm design and rebuild it stronger.

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You are a brutal but constructive algorithms engineer reviewing my algorithm design. Your job is to make it 2x better, not to be polite.

My algorithm design: [PASTE HERE].
Target correctness and complexity: [STATE TARGET].
Audience: engineering teams.

Return:
- 5 specific weaknesses, each tied to correctness and complexity.
- A rewritten algorithm design that fixes them.
- A diff-style explanation of what changed and why.

Be blunt. Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmscritiquereview
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10 variants of a Algorithm design

Spin 10 distinct angles for the same brief.

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Generate 10 meaningfully different algorithm designs from the same brief. Each variant must hit a different angle - not paraphrases.

Brief: [PASTE].
Audience: engineering teams.

For each variant provide:
- Angle name (1-3 words).
- Hook / opening line.
- Full algorithm design.
- The single psychological lever it pulls (loss aversion, status, novelty, etc.).

End with your top pick and a one-line reason. Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmsvariantsideation
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Apply a proven algorithms framework

Run a named algorithms framework end-to-end on my situation.

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Pick the single best-known algorithms framework for this situation, name it, then walk me through applying it to my brief step by step.

My situation: [PASTE].
Goal: correctness and complexity.

Output:
1. Framework name + 1-line origin (so I can verify).
2. Each step labelled, with my inputs filled in.
3. The resulting algorithm design.
4. Where the framework breaks down - and what to swap in.

Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmsframework
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Rewrite for a different audience

Translate the same algorithm design for three different audiences.

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Take my existing algorithm design and rewrite it cleanly for three distinct audiences. Keep the core promise; change the vocabulary, references, and emotional register.

My algorithm design: [PASTE].

Audiences:
A) engineering teams (current).
B) A skeptic who has been burned before.
C) An expert peer who could spot fluff in two seconds.

For each: full rewrite + 2-line note on what shifted. Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmstranslationaudience
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Algorithm design in 50 words

Strip a algorithm design to its essential 50 words.

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Compress the strongest possible algorithm design into exactly 50 words. Every word must earn its place.

Brief: [PASTE].
Audience: engineering teams.

Deliver:
- The 50-word algorithm design.
- The 3 words you would protect if forced to cut to 30.
- The cheap word you almost used and why you killed it.

Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmsconstrainttight
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Algorithm design optimized for discovery

Make a algorithm design that ranks and gets shared.

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Produce a algorithm design that is optimized to be found and shared in the algorithms space, not just to read well.

Topic: [PASTE].
Audience: engineering teams.
Primary keyword/phrase: [PASTE].

Deliver:
- The algorithm design, with the primary phrase used naturally in title, opener, and one mid-point anchor.
- 5 semantic keywords you wove in (and where).
- 3 share-bait one-liners I could pull as social hooks.

Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmsseodistribution
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Compare-and-rank matrix

Score options against the criteria that matter.

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Build a comparison matrix that ranks options for my algorithms decision honestly.

Options: [LIST 3-6].
My priority: correctness and complexity.
Constraints: [PASTE].

Deliver:
1. A table - options × criteria - scored 1-5 with a one-line justification per cell.
2. The weighted winner.
3. The "wrong but obvious" pick most algorithms engineers would default to, and why it loses.

Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmscomparisondecision
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Speak as the customer persona

Hear the algorithm design through the audience's head.

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Embody a precise engineering teams persona and react to my algorithm design as they would, out loud.

The persona: [PASTE 3-5 traits - role, fear, current solution, last frustration].
My algorithm design: [PASTE].

Deliver:
- 3 internal-monologue paragraphs as the persona reading the algorithm design.
- The exact line where they would close the tab - and why.
- 2 edits that would make them keep reading.

Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmspersonaempathy
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Edge-case enumeration

List the failure modes for a algorithm design before they bite.

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Enumerate the edge cases and failure modes that could break my algorithm design in production / in market / in front of engineering teams.

My algorithm design: [PASTE].
Context: algorithms.

Deliver:
- 12 edge cases, ranked by likelihood × damage.
- For each: the trigger, the symptom, and the cheapest mitigation.
- The single edge case I should design around first.

Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmsedge-casesrisk
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Risks & mitigations

Pressure-test a plan before committing.

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Stress-test my algorithms plan and surface what could go wrong, with mitigations.

Plan: [PASTE].
Stakes: correctness and complexity.

Deliver:
1. 7 risks across execution, market, technical, legal, reputational.
2. For each - probability (L/M/H), impact (L/M/H), and a mitigation that costs less than the worst case.
3. The 1 risk worth accepting and the 1 risk worth killing the plan over.

Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmsriskplanning
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Reusable algorithm design template

Turn a one-off into a fill-in-the-blank template.

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Convert a great algorithm design into a reusable template I can fill in repeatedly.

Reference algorithm design: [PASTE].
What stays fixed: the structure and rhythm.
What varies: the inputs.

Deliver:
- The template with clearly marked [VARIABLES].
- A one-line description of each variable and example values.
- 2 worked examples using different inputs.
- The 1 line I should never let a junior change.

Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmstemplatereuse
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30-day ramp plan

Go from zero to shipping in 30 days.

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Design a 30-day plan to take me from where I am now to shipping a credible algorithm design in algorithms.

Starting point: [PASTE].
Time available per day: [PASTE].
End state: correctness and complexity.

Deliver:
- Week 1-4 milestones (1 sentence each).
- Daily 30-minute focus for every day, grouped by week.
- The 3 things I should NOT do during these 30 days.
- The checkpoint that proves I'm on track at day 14.

Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmsplanonboarding
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Diagnose from symptoms

Root-cause a algorithms problem from the symptoms I see.

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I am seeing symptoms in my algorithms work. Diagnose the most likely root causes and propose tests to confirm.

Symptoms: [LIST 3-6].
What I have already ruled out: [PASTE].
Tools available: [PASTE].

Deliver:
1. 3 candidate root causes, ranked by likelihood with a 1-line reason.
2. The fastest test to disprove each.
3. The order to run those tests, and stop conditions.

Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmsdiagnosisroot-cause
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End-to-end workflow design

Design the algorithm design workflow algorithms engineers actually run.

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Design the end-to-end workflow a algorithms engineer would run to produce a high-quality algorithm design repeatedly.

Volume target: [PASTE].
Team size: [PASTE].
Quality bar: correctness and complexity.

Deliver:
- The workflow as a numbered sequence of steps.
- For each step: input, output, owner, tool, and time-box.
- Where to insert review gates without slowing the pipeline.
- The bottleneck step and how to relieve it.

Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmsworkflowops
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Measurement plan & dashboard

Decide what to measure for correctness and complexity.

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Design a measurement plan for correctness and complexity in this algorithms context.

Goal: correctness and complexity.
Audience for the dashboard: [PASTE].
Available data sources: [PASTE].

Deliver:
- The 1 north-star metric - defined precisely.
- 3 input metrics that move it, with formulas.
- 3 guardrail metrics so we don't optimize the wrong thing.
- Dashboard layout sketch (sections, charts, refresh cadence).
- The 1 vanity metric I am tempted to track and should not.

Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmsmeasurementkpi
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Objection handling script

Pre-empt and counter the toughest objections.

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Build an objection-handling script for my algorithm design aimed at engineering teams.

My offer / position: [PASTE].
The 3 most common objections I hear: [PASTE].

Deliver:
- For each objection: validate, reframe, evidence, ask.
- 2 objections I am probably not hearing but should expect.
- The single phrase to never say in response, and why.

Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmsobjectionspersuasion
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A/B test design

Design a clean experiment with one hypothesis.

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Design an A/B test for my algorithm design with one clear hypothesis.

Current algorithm design: [PASTE].
Hypothesis (or what I'm curious about): [PASTE].
Traffic / sample size available: [PASTE].

Deliver:
- The hypothesis sharpened to one sentence.
- Variant A vs Variant B - only one variable changed.
- Primary metric and minimum detectable effect.
- Test duration and stop conditions.
- The decision rule before I peek at results.

Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmsexperimentab-test
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Narrative storyboard

Tell the algorithm design as a story, beat by beat.

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Storyboard my algorithm design as a 7-beat narrative arc.

Subject: [PASTE].
Audience: engineering teams.
Emotional outcome I want: [PASTE].

Beats: Hook → Stakes → Conflict → Attempt → Setback → Insight → Resolution.

For each beat: 1 sentence of action + 1 sentence of feeling. End with the single image the audience walks away with. Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmsstorynarrative
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Algorithm design glossary

Define the 20 terms anyone serious about algorithms must know.

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Build a glossary of the 20 most important terms in algorithms as it relates to algorithm designs and engineering teams.

For each term:
- The term.
- A precise 1-sentence definition (no jargon recursion).
- 1 concrete example.
- The most common misuse I should watch out for.

End with the 1 term that is overused and meaningless. Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmsglossaryreference
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One-page cheat sheet

Compress everything I need into one printable page.

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Produce a one-page cheat sheet for shipping a algorithm design in algorithms.

Audience: engineering teams.
Bias toward action, not theory.

Sections:
1. The 5-step quick path.
2. 3 hard rules (never break).
3. 3 soft rules (break with a reason).
4. Top mistake at each step.
5. The single check before publishing / shipping / sending.

Plain text, dense, under 400 words. Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmscheat-sheetreference
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Anti-patterns to avoid

What NOT to do - with examples.

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List the most damaging anti-patterns in algorithms when producing a algorithm design.

Deliver:
- 8 anti-patterns.
- For each: a named label, a 1-line description, a real-sounding example of the failure, and the corrective principle.
- The anti-pattern that looks like best practice from the outside.

Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmsanti-patternspitfalls
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Recovery / damage-control plan

Stabilize after a algorithms mistake.

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My algorithm design or algorithms effort went wrong. Build me a recovery plan.

What happened: [PASTE].
Who noticed: [PASTE].
Reversibility (1=easy, 5=baked-in): [PASTE].

Deliver:
- The first 24 hours: communications and operational steps.
- The next 7 days: trust-rebuild moves.
- The 30-day move that turns this into a credibility gain.
- The 1 thing I must NOT do in the first 24 hours.

Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmsrecoverycrisis
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90-day roadmap

Map out a quarter of focused algorithms work.

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Build a 90-day roadmap for serious progress on correctness and complexity in algorithms.

Current state: [PASTE].
End state: [PASTE].
Resources: [PASTE].

Deliver:
- Month 1 / Month 2 / Month 3 themes (1 line each).
- 3-5 outcomes per month - each measurable.
- Dependencies and the order they must clear.
- The single bet I should kill if month 1 underdelivers.

Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmsroadmapstrategy
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Build a swipe file

Curate the best algorithm designs I should be learning from.

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Build me a swipe file of exceptional algorithm designs in algorithms to study, not copy.

My focus: correctness and complexity.
Audience I serve: engineering teams.

Deliver:
- 10 exemplary algorithm designs (real or plausibly real) with 1-line context for each.
- For each - the one technique to steal and the one tic to avoid.
- 3 patterns that show up across most of them.
- The exemplary algorithm design that is overrated and why.

Ask one clarifying question only if a hard blocker remains; otherwise proceed with stated assumptions. Use plain language, no fluff, no filler. Quote evidence when citing sources.
algorithmsswipestudy
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