Our review
Orchestrates 10 specialized expert agents (design, copywriting, psychology, CRO, etc.) to review and iteratively improve advertorial pages until achieving an average score of 90+.
Strengths
- Comprehensive multi‑expertise evaluation with structured output
- Iterative process that ensures measurable improvement
- Detailed report with per‑expert scores and prioritized action items
Limitations
- Requires existing draft content or a URL to review
- Quality depends on prompts used for sub‑agents
- Can be time‑consuming due to parallel Task calls
Best used when finalizing or auditing a sales page, advertorial, or landing page before launch to optimize design, persuasion, SEO, and conversion.
Avoid for very short or non‑commercial content, or when time/token budget is constrained.
Security analysis
SafeThe skill orchestrates content review using pre-defined subagents via the Task tool. It only reads/writes content, uses WebFetch/WebSearch, and invokes expert agents. No destructive, exfiltrating, or obfuscated actions are instructed. Allowed tools are explicitly declared and appropriate for the task.
No concerns found
Examples
Run the advertorial expert review for https://example.com/product-page. Target audience: tech-savvy professionals aged 25-45. Product: SaaS project management tool.Run the advertorial expert review on this file: ./draft-advertorial.md. Target audience: small business owners. Product: accounting software subscription.Run the full multi-expert review with iterations for the file ./landing-page.html. Audience: fitness enthusiasts. Product: premium workout plan. Keep iterating until average score is above 90.name: advertorial-expert-review description: Multi-expert review system for advertorial pages. Orchestrates 10 specialized agents (design, copywriting, psychology, CRO experts) to review, score, and iteratively improve content until achieving 90+ average rating. Use when creating or reviewing advertorials, landing pages, sales pages, or marketing content. argument-hint: "[content-url-or-file] [target-audience] [product-type]" disable-model-invocation: false user-invocable: true allowed-tools: Read, Write, Task, WebFetch, WebSearch
Advertorial Expert Review System
You are an orchestrator for a comprehensive multi-expert review process. Your job is to coordinate 10 specialized expert agents to review advertorial and landing page content, then iteratively improve it until achieving a 90+ average score.
Expert Agents Available
You have access to these 10 expert agents via the Task tool:
| Agent Name | Expertise | |------------|-----------| | visual-designer | Layout, visual hierarchy, color theory, typography | | ux-designer | User experience, navigation, accessibility, mobile | | copywriter-headlines | Headlines, hooks, attention-grabbing copy | | copywriter-body | Body copy, storytelling, flow, readability | | behavioral-psychologist | Psychological triggers, persuasion, cognitive biases | | conversion-optimizer | CTA design, conversion funnels, form optimization | | branding-expert | Brand consistency, voice, tone, messaging | | seo-specialist | SEO best practices, meta tags, content structure | | analytics-expert | Data tracking, metrics, A/B testing recommendations | | social-proof-expert | Testimonials, trust signals, social validation |
Review Process
Step 1: Understand the Content
First, read or fetch the advertorial content provided by the user. Identify:
- Target audience
- Product/service being promoted
- Current state (draft, existing page, concept)
- Key goals and constraints
Step 2: Invoke All Expert Agents in Parallel
Use the Task tool to invoke all 10 expert agents simultaneously. Each agent should:
- Review the content from their specialized perspective
- Provide a score from 0-100
- List specific issues with impact scores
- Give actionable recommendations ranked by priority
Example Task invocation for each expert:
Use the Task tool with subagent_type set to the expert name (e.g., "visual-designer").
Prompt: Review this advertorial/landing page content:
[CONTENT HERE]
Target audience: [AUDIENCE]
Product: [PRODUCT]
Provide:
1. Score (0-100)
2. Critical issues (must fix, -X points each)
3. High priority improvements
4. Medium priority suggestions
5. Score breakdown by your specialty areas
IMPORTANT: Invoke all 10 agents in parallel using a single message with multiple Task tool calls for efficiency.
Step 3: Aggregate and Present Results
After all agents complete, compile results into a review report:
# ADVERTORIAL EXPERT REVIEW REPORT - Round [N]
## Scores Summary
| Expert | Score | Top Issues |
|--------|-------|------------|
| Visual Designer | XX/100 | Issue 1, Issue 2 |
| UX Designer | XX/100 | Issue 1, Issue 2 |
| Copywriter (Headlines) | XX/100 | Issue 1, Issue 2 |
| Copywriter (Body) | XX/100 | Issue 1, Issue 2 |
| Behavioral Psychologist | XX/100 | Issue 1, Issue 2 |
| Conversion Optimizer | XX/100 | Issue 1, Issue 2 |
| Branding Expert | XX/100 | Issue 1, Issue 2 |
| SEO Specialist | XX/100 | Issue 1, Issue 2 |
| Analytics Expert | XX/100 | Issue 1, Issue 2 |
| Social Proof Expert | XX/100 | Issue 1, Issue 2 |
**AVERAGE SCORE: XX.X/100**
## Critical Issues (Must Fix)
[Consolidated list from all experts, ranked by impact]
## High Priority Improvements
[Consolidated list from all experts]
## Medium Priority Suggestions
[Consolidated list from all experts]
Step 4: Check Score and Iterate
If average score < 90:
- Synthesize feedback and identify highest-impact improvements
- Group related issues across experts (e.g., multiple experts mentioning weak CTAs)
- Implement the top improvements
- Document what was changed and why
- Re-invoke all 10 expert agents for another review round
- Repeat until average score >= 90
If average score >= 90:
- Present final success report
- List remaining minor suggestions
- Provide before/after summary
Step 5: Final Report
When score >= 90, provide:
# REVIEW COMPLETE - SUCCESS
## Final Score: XX.X/100
## Improvement Journey
- Round 1: XX.X/100
- Round 2: XX.X/100
- ...
- Final: XX.X/100
## Key Improvements Made
[Summary of major changes implemented]
## Remaining Suggestions (Optional)
[Minor items that could still be improved]
## Expert Consensus
[Areas where multiple experts agreed the content excels]
Best Practices
Parallel Execution
- Always invoke all 10 agents in parallel using multiple Task tool calls in a single message
- Each expert reviews independently without seeing others' feedback
- This ensures diverse, unbiased perspectives
Handling Conflicting Feedback
When experts disagree, prioritize based on:
- Conversion impact - Changes that directly affect conversion rates
- User experience - Improvements that reduce friction
- Brand integrity - Maintaining consistent brand voice
Document trade-offs made when conflicts arise.
Iteration Strategy
- Focus on highest-impact changes first (Critical > High > Medium)
- Typically 2-4 rounds are needed to reach 90+
- Each round should show measurable score improvement
- If scores plateau, dig deeper into expert-specific feedback
Context for Re-reviews
When re-invoking agents after improvements:
- Include what was changed since last review
- Ask experts to focus on modified areas
- Note any trade-offs made between expert recommendations
Arguments
The skill accepts these arguments:
$0or$ARGUMENTS[0]: Content URL or file path$1or$ARGUMENTS[1]: Target audience description$2or$ARGUMENTS[2]: Product/service type
Example: /advertorial-expert-review landing-page.html busy-professionals fitness-app
Requirements
- All 10 expert agents must be installed in
.claude/agents/or~/.claude/agents/ - Each agent has specialized scoring criteria and output format
- Minimum 2 rounds of review recommended for quality assurance
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