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Aeo Strategy

skill-leadmagic-gtm-skills-aeo-strategy · by LeadMagic

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$ agentstack add skill-leadmagic-gtm-skills-aeo-strategy

✓ scanned · ✓ verified — works with Claude Code, Cursor, and more.

Security review

✓ Passed

No issues found. Passed automated security review. · v0.1.0 How review works →

  • Prompt-injection patterns
  • Secret / credential exfiltration
  • Dangerous shell & filesystem operations
  • Untrusted network calls
  • Known-malicious package signatures

What it can access

  • Network access No
  • Filesystem access No
  • Shell / process execution No
  • Environment & secrets No
  • Dynamic code execution No

From automated source analysis of v0.1.0. “Used” means the capability is present in the source — more access means more to trust, not that it’s unsafe.

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About

Answer Engine Optimization (AEO)

Overview

AI search engines (ChatGPT, Perplexity, Gemini, Claude) are capturing 10-30% of B2B search traffic. Traditional SEO doesn't optimize for AI answers. AEO ensures your content is the source AI engines cite when users ask questions in your domain. This skill covers the strategy.

Authoritative Foundations

  • AEO Framework — Named methodology governing recommendations in this skill's process.
  • Google Search Generative Experience Guidelines — Named methodology governing recommendations in this skill's process.
  • Google Search Central — SEO Starter Guide — SEO Starter Guide

When to Use

  • "Optimize for AI search"
  • "AEO strategy"
  • "Get cited by ChatGPT"
  • "Generative engine optimization"
  • "Rank in AI search results"

Step-by-Step Process

Phase 1: Understand How AI Search Works

AI search engines:

  1. Receive a user query
  2. Search the web for relevant sources (often using Bing/Google APIs)
  3. Read the top sources
  4. Synthesize an answer, citing specific sources
  5. Present the answer with citations

Your goal: be the source they cite. This requires being the most authoritative, clear, and well-structured source on the topic.

Phase 2: AEO Content Principles

  • Authoritative voice: Cite specific data, name specific experts, reference

specific studies. AI engines weight named sources higher.

  • Clear structure: Use H2/H3 headers that mirror the questions people ask.

"What is [X]?" → H2. "How does [X] work?" → H2. "What are the benefits of [X]?" → H2.

  • Concise answers: Start each section with a 1-2 sentence definitive answer

before expanding. AI engines extract these as the "answer snippet."

  • Source citations: Link to primary sources (studies, reports, official docs).

AI engines follow citations to verify claims.

  • Entity-rich content: Mention specific companies, products, people, and

concepts by name. AI engines build knowledge graphs from entities.

  • Schema markup: FAQ schema, HowTo schema, Article schema. Helps AI engines

parse your content structure.

Phase 3: Content Formats AI Engines Prefer

  • Definitions: "What is [X]?" — clear, authoritative definition within 50 words
  • Comparisons: "[X] vs [Y]" — structured comparison table, clear recommendation
  • How-to guides: Step-by-step with numbered steps, clear prerequisites
  • Statistics/data: "2026 [X] benchmarks" — tables, charts, sourced data
  • Listicles: "Top 10 [X] tools" — numbered list with structured descriptions
  • FAQ pages: Question-answer format, grouped by topic

Phase 4: Technical AEO

  • Indexability: AI engines can't cite content they can't crawl. Ensure

your content is publicly accessible (no paywalls, no login walls).

  • Page speed: AI engines time out on slow pages. Core Web Vitals passing.
  • Structured data: Implement FAQ, HowTo, Article, and Organization schema.
  • RSS/API feeds: Make content available via RSS and API for direct ingestion.
  • LLMs.txt: Create an llms.txt file at your root domain listing your key

content pages with descriptions (emerging standard for AI crawlability).

Phase 5: Measurement

  • AI citation tracking: Monitor whether your content is cited in AI answers.

Tools are emerging for this; currently manual sampling works.

  • Brand mentions in AI: Track whether your brand appears in AI answers vs

competitors.

  • AI-referred traffic: Check referrer headers for AI search engines.
  • Correlation with traditional SEO: AEO optimization almost always improves

traditional SEO rankings too.

Output Format

AEO strategy document with: AI search landscape analysis, content optimization guidelines, content format priorities, technical implementation checklist, and measurement framework.

Quality Check

Before delivering, verify:

  • [ ] All required sections are complete
  • [ ] Output matches the user's stated need
  • [ ] Named frameworks are cited for key recommendations
  • [ ] No vague claims — every recommendation has a specific action
  • [ ] Deliverable is ready for operational use, not just conceptual

Common Pitfalls

  1. Writing for search engines, not humans. Keyword-stuffed content that reads like a robot wrote it. Fix: write for your ICP first, optimize for search second.
  2. Publishing and praying. Creating content without a distribution plan. Fix: every piece gets a 30-day promotion calendar across email, social, and paid.
  3. Ignoring content freshness. 2-year-old content with outdated data and examples still ranking. Fix: quarterly content audit — update or retire stale pieces.

Implementation Depth

Use this section when the user asks for a finished asset, not a high-level explanation.

Diagnostic Questions

  1. What is the primary motion: founder-led, sales-led, product-led, partner-led, or lifecycle-led?
  2. Which ICP tier is the output for: small business, mid-market, enterprise, or mixed?
  3. What proof is available today: customer stories, usage data, third-party validation, screenshots, or none?
  4. What system will execute the work: CRM, sequencer, warehouse, support desk, product analytics, or manual workflow?
  5. What decision will the user make from this output: launch, prioritize, route, rewrite, score, coach, or measure?

Framework Application

Map the recommendation explicitly to the named frameworks in this skill:

  • AEO Framework: apply only the part that directly improves the requested deliverable.
  • Google Search Generative Experience Guidelines: apply only the part that directly improves the requested deliverable.
  • Google Search Central — SEO Starter Guide: apply only the part that directly improves the requested deliverable.

Deliverable Standard

A strong output from this skill includes:

  • A crisp diagnosis of the current situation
  • A recommended path with tradeoffs, not a generic list
  • A concrete artifact the user can use immediately: table, script, checklist, scorecard, sequence, dashboard spec, or implementation plan
  • A measurement plan with leading and lagging indicators
  • Risks and edge cases called out before execution

Adaptation Rules

  • For small business: reduce complexity, shorten time-to-value, and prioritize owner/operator clarity.
  • For mid-market: include workflow ownership, handoffs, integrations, and enablement assets.
  • For enterprise: include governance, risk, procurement, stakeholder mapping, and proof requirements.

Execution Artifacts

  • references/framework-notes.md — AEO content principles, schema checklist, Pattern 25 routing
  • templates/output-template.md — Deliverable shell for agent output
  • scripts/check-output.py — Lightweight deliverable validator
  • references/seo-strategy-playbook.md — Repo root: §8 AEO / AI search overlap
  • skills/foundation/using-gtm-skills/SKILL.md — Pattern 25: B2B SEO Stack (step 4)

Related Skills

  • seo-strategy, pseo-strategy, content-marketing, pillar-pages, faq-seo

Source & license

This open-source skill is cataloged on AgentStack and links to its original source — we do not rehost the code.

Install and usage instructions live in the source repository linked above.

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Versions

  • v0.1.0 Imported from the upstream source.