MoizIbnYousaf/marketing-cli

landscape-scan

Scan the current market landscape and produce a ground-truth ecosystem snapshot. Chains /last30days for live research, validates with user, and writes brand/landscape.md with a Claims Blacklist that hard-gates all content generation. Use when: "landscape", "ecosystem", "market snapshot", "ground truth", "what's happening", "refresh landscape", "market trends", or before any content campaign to verify claims.

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See how to use itView GitHub source
npx skills add https://github.com/MoizIbnYousaf/marketing-cli --skill "skills/landscape-scan"
Automated source guideContent productionDeep source

Source checked Jul 28, 2026·Refresh due Oct 26, 2026

Reorganized from the pinned upstream SKILL.md

Source-grounded content guide: landscape-scan

Every claim your marketing makes sits on top of an assumption about the market. "We're the first to..." "Nobody else does..." "The market is moving toward..." When these assumptions are wrong, your positioning collapses on contact with reality. Customers who Google your claims a…

npx skills add https://github.com/MoizIbnYousaf/marketing-cli --skill "skills/landscape-scan"
Check the pinned source

The pinned source contains enough sections and task detail for a source-grounded deep guide; automated content is still not an independent test.

2,406 source words · 47 usable sections

Best fit

  • Use when: "landscape", "ecosystem", "market snapshot", "ground truth", "what's happening", "refresh landscape", "market trends", or before any content campaign to verify claims.

Content brief

  • Always read available brand/ files before building the research query, even if the user provides a direct request.
  • WHY: Without brand context, the research query is unfocused. Searching "[product category] market trends" returns generic industry noise. Searching "[product category] + [specific competitors] + [specific claims to veri…

Content deliverables

  • Write ./brand/landscape.md with this structure:
  • markdown --- title: Market Landscape type: landscape-scan skill: landscape-scan date: [ISO date] ecosystemsegments: [number] claimsblacklisted: [number] marketshiftstracked: [number] freshnessdays: 0 researchsources: [l…

Content workflow

Read landscape-scan through these 5 source sections

Sections are extracted automatically from the pinned SKILL.md and link back to the source.

01

Phase 1: Preflight

1. Read brand/ context files (see On Activation above). 2. Detect mode: create vs refresh (see Iteration Detection above). 3. Determine context level: - L0 -- No brand/ files. Need to ask everything. - L1 -- Have product name/description only. - L2 -- Have competitors.md and/or…

SKILL.md · Phase 1: Preflight
Read brand/ context files (see On Activation above).Detect mode: create vs refresh (see Iteration Detection above).Determine context level:
02

Phase 2: Build Research Query

Extract search parameters from available context:

SKILL.md · Phase 2: Build Research Query
Product/Category: from positioning.md primarygap or user inputCompetitors: from competitors.md competitor names, or user inputTarget market: from audience.md primarypersona, or user input
03

Phase 3: Run /last30days

The /last30days skill searches across Reddit, X/Twitter, YouTube, Hacker News, and web sources for the last 30 days of activity.

SKILL.md · Phase 3: Run /last30days
Use WebSearch tool directly with the research query.Never use Claude native WebSearch. Use exa-search / Exa MCP for web research (and /last30days for social signal).If no web research is available at all, proceed with user knowledge only
04

Phase 4: Validate with User

Present 3-5 targeted questions using AskUserQuestion. Cap at 5 total -- do not interrogate. Prioritize questions about contradictions and surprises.

SKILL.md · Phase 4: Validate with User
Contradictions -- where research contradicts existing brand/ filesSurprises -- findings that might change strategyGaps -- things research couldn't determine
05

Phase 5: Synthesize into landscape.md

Write ./brand/landscape.md following the output format below. Every section must be populated -- use "No data available" with a reason if a section cannot be filled. See references/landscape-schema.md for the full schema with examples of each section.

SKILL.md · Phase 5: Synthesize into landscape.md
Write ./brand/landscape.md following the output format below. Every section must be populated -- use "No data available" with a reason if a section cannot be filled. See references/landscape-schema.md for the full schem…

SkillSignal prompt templates

Provide the task, context, and acceptance criteria

These prompts were written by SkillSignal from the source structure; they are not upstream text.

Source-grounded prompt

Use for a content task while explicitly checking the source sections.

Use landscape-scan for this content task: [task]. Inputs and constraints: [details]. Work through these pinned SKILL.md sections: “Phase 1: Preflight”, “Phase 2: Build Research Query”, “Phase 3: Run /last30days”, “Phase 4: Validate with User”, “Phase 5: Synthesize into landscape.md”. Cite the concrete requirements that shape each step, do not invent capabilities absent from the source, and verify the result against: [acceptance criteria].

Content checklist

Verify each item before delivery

The source section “Phase 1: Preflight” has been checked.

The source section “Phase 2: Build Research Query” has been checked.

The source section “Phase 3: Run /last30days” has been checked.

The source section “Phase 4: Validate with User” has been checked.

Source output checked: Write ./brand/landscape.md with this structure:

Source output checked: markdown --- title: Market Landscape type: landscape-scan skill: landscape-scan date: [ISO date] ecosystemsegments: [number] claimsblacklisted: [number] marketshiftstracked: [number] freshnessdays: 0 researchsources: [l…

Static permission evidence

Inspect the exact source lines that triggered a signal

These are source excerpts matched by deterministic rules, not findings of malicious behavior, safety, or actual execution.

Choose a different workflow

When another Skill is the better fit

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Open source detail

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A separate implementation from MoizIbnYousaf/marketing-cli; compare its source, maintenance signals, and permission requirements.

Open source detail

copywriting

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A separate implementation from coreyhaines31/marketingskills; compare its source, maintenance signals, and permission requirements.

Open source detail

FAQ

What does the landscape-scan source document cover?

Every claim your marketing makes sits on top of an assumption about the market. "We're the first to..." "Nobody else does..." "The market is moving toward..." When these assumptions are wrong, your positioning collapses on contact with reality. Customers who Google your claims a…

How do I install landscape-scan?

The source record exposes this install command: npx skills add https://github.com/MoizIbnYousaf/marketing-cli --skill "skills/landscape-scan". Inspect the command and pinned source before running it.

Which permission-related actions were detected?

Static rules flagged read-files, network in the source; the page lists the matching lines and excerpts.

Repository stars
27
Repository forks
5
Quality
78/100
Source repository last pushed

Quality breakdown

Based on traceable docs and repository signals; stars are not treated as quality.

78/100
Documentation26/30
Specificity18/25
Maintenance18/20
Trust signals16/25

Compare before choosing

Related Agent Skills and source variants

These links are selected from shared tasks, functions, stacks, platforms, and same-name variants. Compare the source owner, documentation, permissions, and maintenance signals.

direct-response-copy by MoizIbnYousaf

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View original Skill.mdThis page is parsed directly from the repository SKILL.md without editorial rewriting. Collected: Jul 28, 2026 · about 9 min

/landscape-scan -- Ground-Truth Ecosystem Snapshot

Every claim your marketing makes sits on top of an assumption about the market. "We're the first to..." "Nobody else does..." "The market is moving toward..." When these assumptions are wrong, your positioning collapses on contact with reality. Customers who Google your claims and find them false don't come back.

This skill builds a verified ecosystem snapshot that becomes the single source of truth for all downstream content. The Claims Blacklist it produces hard-gates every content skill -- if a claim is blacklisted, no skill writes it. Period.

No SaaS tools needed. Live web research + user validation.


On Activation

  1. Check if brand/ directory exists in the project root.
  2. If it does, read available files in priority order:
    • competitors.md -- existing competitive intel (primary input)
    • positioning.md -- current positioning angles and claims
    • audience.md -- target market and buyer personas
    • voice-profile.md -- brand personality (for tone of output)
    • learnings.md -- past marketing learnings and corrections
  3. Apply loaded brand context to focus the landscape scan -- existing competitor data narrows the research query, positioning data identifies claims to verify.
  4. If brand/ does not exist or is empty, proceed without it -- this skill works standalone by asking the user foundational questions.

Iteration Detection

Before starting, check whether ./brand/landscape.md already exists.

If landscape.md EXISTS --> Refresh Mode

Do not start from scratch. Instead:

  1. Read the existing landscape file.

  2. Present a summary of the current state:

    EXISTING LANDSCAPE SNAPSHOT
    Last updated {date} by /landscape-scan
    
    Ecosystem segments: {N}
    Claims blacklisted: {N}
    Market shifts tracked: {N}
    
    Freshness: {days} days old (threshold: 14 days)
    
    ------------------------------------------
    
    What would you like to do?
    
    1. Full refresh -- re-run /last30days, revalidate everything
    2. Verify claims -- check if blacklisted claims are still invalid
    3. Add new segment -- expand to cover a new market area
    4. Rebuild from scratch -- discard and start over
    
  3. Process the user's choice:

    • Option 1 --> Re-research with fresh /last30days query, merge with existing data
    • Option 2 --> Focused validation of Claims Blacklist items only
    • Option 3 --> Targeted research on a new ecosystem segment, merge into existing file
    • Option 4 --> Full process from scratch
  4. Before overwriting, show a diff of what changed and ask for confirmation.

If landscape.md DOES NOT EXIST --> Full Scan Mode

Proceed to the full process below.


The Core Job

Map current ecosystem reality so every downstream skill operates on verified ground truth. The output has two critical components:

  1. Ecosystem Snapshot -- what is actually happening in the market right now (players, trends, shifts, emerging categories, consolidation, funding rounds)
  2. Claims Blacklist -- specific claims your marketing MUST NOT make because they are verifiably false, outdated, or easily disproven by a customer who spends 30 seconds searching

The Claims Blacklist is not advisory. It is a hard gate. Every content-generating skill reads brand/landscape.md and refuses to write blacklisted claims.


Orchestration Flow

Phase 1: Preflight

  1. Read brand/ context files (see On Activation above).
  2. Detect mode: create vs refresh (see Iteration Detection above).
  3. Determine context level:
    • L0 -- No brand/ files. Need to ask everything.
    • L1 -- Have product name/description only.
    • L2 -- Have competitors.md and/or positioning.md.
    • L3 -- Have L2 + will run /last30days for live data.
    • L4 -- Have L3 + existing landscape.md (refresh mode).
  4. If --dry-run is set, report what WOULD happen and exit. Do not make any network calls or write any files.

Phase 2: Build Research Query

Extract search parameters from available context:

  • Product/Category: from positioning.md primary_gap or user input
  • Competitors: from competitors.md competitor names, or user input
  • Target market: from audience.md primary_persona, or user input
  • Time window: last 30 days (default), or user-specified

Build the research query (see references/query-templates.md for industry-specific templates). The query should cover:

  1. Market movements -- funding, acquisitions, pivots, shutdowns
  2. Product launches -- new entrants, major version releases, feature parity shifts
  3. Pricing changes -- competitors adjusting pricing models or tiers
  4. Narrative shifts -- what the industry press and community are saying
  5. Regulatory/platform changes -- policy shifts that affect the ecosystem

If at L0-L1 (no competitors.md), ask the user:

I need to understand your market before scanning.

1. What does your product do in one sentence?
2. Who are your top 3 competitors? (names or URLs)
3. What category would a customer search for?

Cap at 3 questions. Use answers to build the query.

Phase 3: Run /last30days

Invoke the Skill tool:

Skill: last30days
Args: "{research query from Phase 2}"

The /last30days skill searches across Reddit, X/Twitter, YouTube, Hacker News, and web sources for the last 30 days of activity.

Fallback if /last30days is unavailable:

  1. Use WebSearch tool directly with the research query.
  2. Never use Claude native WebSearch. Use exa-search / Exa MCP for web research (and /last30days for social signal).
  3. If no web research is available at all, proceed with user knowledge only and mark every finding as source: user-reported in the output.
  4. Note the limitation: "Landscape based on provided information, not live research. Verify before making strategic decisions."

Phase 4: Validate with User

Present 3-5 targeted questions using AskUserQuestion. Cap at 5 total -- do not interrogate. Prioritize questions about contradictions and surprises.

Question priority order:

  1. Contradictions -- where research contradicts existing brand/ files "Research shows {Competitor X} now offers free tier. Your competitors.md says they're premium-only. Which is current?"
  2. Surprises -- findings that might change strategy "Did you know {Competitor Y} raised $50M last month? Does this change your positioning approach?"
  3. Gaps -- things research couldn't determine "I couldn't verify whether {claim from positioning.md} is still unique to you. Do any competitors now offer this?"
  4. Scope -- if research surfaced new segments "Research surfaced {new player/category}. Should I include them in the landscape?"
  5. Blacklist candidates -- potential claims to block "Your positioning says 'only solution that does X.' Research found 2 competitors now do X. Should I blacklist this claim?"

If there are no contradictions or surprises, reduce to 3 questions max. Never ask questions you can answer from the research.

Phase 5: Synthesize into landscape.md

Write ./brand/landscape.md following the output format below. Every section must be populated -- use "No data available" with a reason if a section cannot be filled. See references/landscape-schema.md for the full schema with examples of each section.

Phase 6: Cross-Reference

After writing landscape.md, compare it against other brand/ files:

  1. vs competitors.md -- flag competitors that have changed positioning, pricing, or status since competitors.md was written.
  2. vs positioning.md -- flag positioning claims that are now blacklisted or weakened by market shifts.
  3. vs audience.md -- flag audience assumptions that market shifts may have invalidated.

Present contradictions to the user:

CROSS-REFERENCE: BRAND FILE CONTRADICTIONS

  competitors.md (updated 45 days ago)
  ├── {Competitor X} pricing changed: was $29/mo, now free tier
  └── New entrant {Y} not listed

  positioning.md (updated 30 days ago)
  ├── "Only AI-powered solution" -- now FALSE (2 competitors added AI)
  └── Suggest: refresh with /positioning-angles

  audience.md (updated 60 days ago)
  └── No contradictions found

  SUGGESTED REFRESHES
  -> /competitive-intel    Update competitor teardowns (~15 min)
  -> /positioning-angles   Rebuild angles with new landscape (~15 min)

Do NOT auto-update other brand files. Only flag and suggest.


Output Format

Write ./brand/landscape.md with this structure:

---
title: Market Landscape
type: landscape-scan
skill: landscape-scan
date: [ISO date]
ecosystem_segments: [number]
claims_blacklisted: [number]
market_shifts_tracked: [number]
freshness_days: 0
research_sources: [list of source types used]
---

# Market Landscape -- [Product/Project Name]

## Ecosystem Map

### Market Category
[One-line definition of the market category this product operates in]

### Ecosystem Segments

#### Segment: [Name]
- **Players:** [Company 1], [Company 2], [Company 3]
- **Current state:** [What's happening in this segment right now]
- **Trajectory:** [growing/stable/declining/consolidating]
- **Signal:** [Specific evidence -- funding round, product launch, trend data]

#### Segment: [Name]
[Same structure]

---

## Market Shifts (Last 30 Days)

### [Shift 1: Descriptive Title]
- **What happened:** [Factual description]
- **Source:** [URL or source type]
- **Impact on us:** [How this affects our positioning/strategy]
- **Urgency:** [high/medium/low]

### [Shift 2: Descriptive Title]
[Same structure]

---

## Claims Blacklist

> These claims MUST NOT appear in any marketing content.
> Every content-generating skill reads this section as a hard gate.

### Blacklisted Claims

| # | Claim | Reason | Evidence | Blacklisted Date |
|---|-------|--------|----------|-----------------|
| 1 | "[Specific claim text]" | [Why it's false/misleading] | [Source] | [ISO date] |
| 2 | "[Specific claim text]" | [Why it's false/misleading] | [Source] | [ISO date] |

### Verified Safe Claims
- "[Claim]" -- verified [date], source: [source]
- "[Claim]" -- verified [date], source: [source]

---

## Competitive Movement

### New Entrants
- **[Company]** -- [What they do, when they appeared, threat level]

### Pricing Shifts
- **[Company]** -- [Old pricing] -> [New pricing], [date]

### Positioning Shifts
- **[Company]** -- was "[old positioning]", now "[new positioning]"

### Exits/Acquisitions
- **[Company]** -- [What happened], [date]

---

## Ecosystem Opportunities

1. **[Opportunity]** -- [Why this matters now, based on landscape data]
2. **[Opportunity]** -- [Why this matters now]
3. **[Opportunity]** -- [Why this matters now]

---

## Raw Research Notes

[Condensed notes from /last30days or web research, with source URLs]

Progressive Enhancement Levels

LevelContext AvailableOutput Quality
L0Product name onlyBasic ecosystem map, user-reported claims only, no blacklist verification
L1+ product description, target marketFocused scan, category-specific segments, preliminary blacklist
L2+ competitors.md, positioning.mdVerified blacklist against known claims, competitor movement tracking
L3+ /last30days live researchFull ground-truth snapshot, evidence-backed blacklist, source URLs
L4+ existing landscape.md (refresh)Delta analysis, trend tracking over time, blacklist evolution

Output Presentation

Header

================================================

  MARKET LANDSCAPE SCAN
  [Product/Project Name]
  Generated [Month Day, Year]

================================================

Files Saved

  FILES SAVED

  ./brand/landscape.md               ok

What's Next

  WHAT'S NEXT

  Your ecosystem snapshot is built with {N}
  segments mapped, {N} market shifts tracked,
  and {N} claims blacklisted. All content skills
  will now respect the Claims Blacklist.

  -> /competitive-intel     Update competitor
                            teardowns with new
                            landscape data (~15 min)
  -> /positioning-angles    Rebuild angles against
                            verified ground truth
                            (~15 min)
  -> /direct-response-copy  Write copy that avoids
                            blacklisted claims
                            (~15 min)

  Or tell me what you're working on and
  I'll route you.

Anti-Patterns

Don't auto-update other brand files

Write landscape.md only. Flag contradictions in other brand/ files and suggest refreshes, but never overwrite competitors.md, positioning.md, or audience.md.

WHY: Each brand file has an owning skill that understands the full context of that file. Auto-updating creates ownership conflicts -- if /landscape-scan silently changes competitors.md, the next /competitive-intel run may produce inconsistent results because it doesn't know what changed or why.

Don't skip user validation

Always run Phase 4 (Validate with User) even when research data looks solid.

WHY: Live research can surface false positives -- a competitor's pricing page may show a promotion, not a permanent change. A press release about a feature may be vaporware. Only the user can verify whether a finding is real enough to blacklist. False positive blacklisting removes valid claims from your marketing arsenal unnecessarily.

Don't run without checking brand context first

Always read available brand/ files before building the research query, even if the user provides a direct request.

WHY: Without brand context, the research query is unfocused. Searching "[product category] market trends" returns generic industry noise. Searching "[product category] + [specific competitors] + [specific claims to verify]" returns actionable intelligence. The difference between a useful scan and a useless one is query specificity.

Don't blacklist claims without evidence

Every blacklisted claim must have a specific reason AND a source. "Might be outdated" is not sufficient for blacklisting.

WHY: The Claims Blacklist is a hard gate. A wrongly blacklisted claim prevents every content skill from using a valid differentiator. The cost of a false blacklist is as high as the cost of a false claim -- both waste positioning power.

Don't treat the landscape as permanent

landscape.md has a 14-day freshness window, the shortest of any brand file.

WHY: Markets move fast. A landscape that's 30 days old may have missed a competitor launch, a funding round, or a pricing change that invalidates your Claims Blacklist. The short freshness window forces regular re-scans, which is the entire point -- ground truth must stay grounded.


Web Search Fallback

If web search / /last30days is unavailable:

  1. Ask the user for recent market developments they're aware of.
  2. Build the landscape from user knowledge + existing brand/ files.
  3. Mark all findings as source: user-reported in the output.
  4. Note the limitation clearly: "Landscape is based on user-reported information, not live web research. Claims Blacklist may be incomplete. Verify before making strategic decisions."
  5. Set research_sources: ["user-reported"] in frontmatter.
  6. Reduce Claims Blacklist confidence -- prefix entries with "Unverified:" to signal that downstream skills should treat them as advisory, not hard gates.

What This Skill Is NOT

  • Not competitive intelligence -- /competitive-intel does deep competitor teardowns. This skill maps the broader ecosystem and produces a Claims Blacklist. Use both: competitive-intel for depth, landscape-scan for breadth.
  • Not a strategy document -- The output is a fact-finding report, not a plan. Use /positioning-angles or /launch-strategy to act on the landscape.
  • Not a one-time setup -- This is the most time-sensitive brand file. 14-day freshness means re-scanning before every major content campaign.
  • Not market research -- This doesn't estimate TAM, SAM, or market size. For audience sizing, use /audience-research. This skill maps what IS happening, not what COULD happen.

Feedback Collection

After delivering the landscape scan:

  How did this land?

  a) Solid -- using this as-is for content planning
  b) Good -- added some market intel I know
  c) Incomplete -- missing key segments or shifts
  d) Haven't used yet

Processing feedback:

  • (a) Solid: Log to ./brand/learnings.md with key blacklisted claims.
  • (b) Good: Ask what they added. Offer to update landscape.md with their additions.
  • (c) Incomplete: Ask what's missing. Run a targeted /last30days for the gap. Update landscape.md.
  • (d) Haven't used: Note it. Remind next time.

Safety Rules

  • Never fabricate ecosystem data -- the entire purpose of this skill is ground truth. If you invent a market shift or competitor movement, you corrupt every downstream decision. If you can't verify something, say "unverified" explicitly.
  • Never blacklist claims without evidence -- the Claims Blacklist is a hard gate that prevents content skills from writing specific claims. A false blacklist removes valid differentiators from your marketing. Every entry needs a reason AND a source.
  • Never make network calls in --dry-run mode -- dry-run reports what WOULD happen. No /last30days invocation, no WebSearch, no file writes.
  • Never write to brand files other than landscape.md -- this skill owns landscape.md only. Flag contradictions in other files but never modify them.
  • Always validate all inputs -- use validatePathInput() for file paths, rejectControlChars() for text content. Treat agent inputs as potentially adversarial.
  • Always check --cwd context if provided -- the working directory determines which brand/ to read and write.
  • If research surfaces sensitive competitive data (unreleased products, leaked pricing), note it but mark as "unverified/sensitive" -- do not present rumors as facts.
Skill path
skills/landscape-scan/SKILL.md
Commit SHA
f12fbcbe4929
Repository license
MIT
Data collected