
Trend Spotter
FreeIdentify and leverage trending topics for your brand.
Free · Opens the source repo
What Trend Spotter does
Trend Spotter is a skill designed to help brands navigate the complex landscape of social media trends and cultural moments. By analyzing real-time social conversations and emerging topics, it provides a comprehensive report that includes ranked trends, brand-fit scores, and actionable recommendations. This skill is particularly useful for marketers and brand strategists looking to align their campaigns with current trends that resonate with their target audience.
The skill operates by taking user inputs such as the brand, industry, target platforms, audience demographics, and the desired time horizon for the campaign. It then generates a detailed trend report that not only highlights the top trends to act on but also provides insights into content format adaptations and competitor trend adoption. This allows users to make informed decisions about which trends to engage with and how to approach them effectively.
Trend Spotter is not just about identifying trends; it also emphasizes the importance of brand alignment and audience fit. Each trend is scored based on its relevance to the brand, helping users avoid potential pitfalls associated with trends that may not resonate well. The skill also includes a cultural calendar, which helps brands plan their campaigns around significant events and moments, ensuring timely and relevant engagement.
This skill is ideal for marketers, brand managers, and content creators who want to stay ahead of the curve by leveraging trending topics to enhance their brand visibility and engagement. By utilizing Trend Spotter, users can ensure that their marketing efforts are timely, relevant, and strategically aligned with current cultural conversations.
When to use it
Use this skill when you need to assess current trends and determine their fit for your brand's marketing strategy.
When not to use it
This skill is not suitable for finding influencers or creating a posting calendar; those tasks require different tools.
What you can build with it
Analyzing TikTok Trends for a Fitness Brand
A fitness brand can use Trend Spotter to identify the latest TikTok trends, assess their relevance, and decide on participation.
Planning a Campaign Around a Cultural Moment
Marketers can leverage the cultural calendar feature to time their campaigns around significant events that align with their brand.
Evaluating Competitor Trend Adoption
Use the skill to analyze which trends competitors have adopted successfully, helping to identify gaps and opportunities.
How to install Trend Spotter
View source1. Install with the skills CLI
npx skills add aaron-he-zhu/aaron-marketing-skills/trend-spotter --agent claude-code2. Or install it manually
Download the skill folder and drop it into ~/.claude/skills/ for all projects, or .claude/skills/ to scope it to one repo. Restart Claude Code so it picks up the new skill.
Anthropic's agentic coding CLI, and the reference implementation of Agent Skills. Drop a skill folder into ~/.claude/skills and Claude Code loads it automatically whenever a task matches the skill's description. Claude Code docs
Inside SKILL.md
Written by aaron-he-zhuTrend Spotter
This skill helps you identify and capitalize on trends that matter to your audience. It monitors social conversations, emerging topics, viral content formats, and cultural moments to inform influencer campaign timing and content strategy.
Quick Start
Shortest invocation:
What trends are relevant for [brand/industry] right now?
Common scenario — analyze one specific trend before committing:
Should [brand] participate in [trend/challenge]? Score the brand fit and give a go/skip call.
Skill Contract
- Reads: brand/industry, target platforms, audience, geographic focus, time horizon, content categories; prior audience and niche findings from
memory/influencer/if present. - Writes: a trend report (ranked trends, brand-fit scores, format calls, cultural calendar, go/skip recommendations) to
memory/influencer/trend-spotter/YYYY-MM-DD-<topic>.md. - Promotes: durable facts (top trends to act on now, trends to avoid, next review date) to
memory/hot-cache.md. - Done when:
- Each candidate trend has a brand-fit score and a go / caution / skip call.
- The report names the top 3 trends to act on now plus a watch list and an avoid list.
- Action items carry a timing window and a content-format recommendation.
- Primary next skill: influencer-discovery — find the creators who can execute the chosen trends.
Handoff Summary
Emit the standard shape from skill-contract.md §Handoff Summary Format.
Data Sources
This skill works with no live integrations (Tier 1): ask the user for the brand, platforms, audience, and time horizon, then reason from those inputs. Where a tool would sharpen the read, use a ~~ connector placeholder:
~~social platform analytics— trending hashtags, sounds, and view counts per platform.~~trend database— emerging topics, challenge participation, and growth rates.~~social listening— cultural conversations and sentiment around a topic.~~competitor tracking— which trends rival brands have adopted and how they performed.
No connector is required to produce a useful report. See CONNECTORS.md for the free/keyless recipe per category.
For a keyless way to fill the trending tables with real signal, run the multi-source trend scout — Google Trends RSS + Hacker News + Reddit + YouTube-outlier, scored against the brand's verticals via the bundled stdlib rss_monitor.py (no new dependency): references/trend-scout-recipe.md. This is the Tier-1 recipe behind ~~trend database (Google Trends RSS).
Keyless news pulse (Tavily): python3 "${CLAUDE_PLUGIN_ROOT}/scripts/connectors/tavily.py" search "<vertical or candidate trend>" --topic news --time-range w --limit 10 adds a recency-filtered news read with per-result relevance scores to the scout mix — a second keyless source to corroborate an RSS spike before calling it a rising trend. Keep single-source signals labeled Estimated; two independent sources agreeing upgrades the confidence note, not the label.
Keyless momentum sharpeners: python3 "${CLAUDE_PLUGIN_ROOT}/scripts/connectors/pageviews.py" "<Topic_Article>" --granularity daily --days 30 shows whether a topic's Wikipedia attention is actually climbing — Measured evidence for the rising / peak / declining format call — and the Hacker News Algolia API (https://hn.algolia.com/api/v1/search?query=<topic>, keyless) upgrades the HN RSS read with points and comment counts usable as a heat score.
Instructions
When a user requests trend analysis, run these steps. Each step has a fill-in template in references/templates.md — copy the matching block and populate it.
- Define trend parameters — capture brand/industry, platforms, audience, geographic focus, time horizon, and content categories. (Template: Step 1.)
- Identify current trends — log trending topics, hashtags, audio/sounds, and challenges with volume, growth, lifespan, and brand-safety flags. (Template: Step 2.)
- Analyze content format trends — list hot, emerging, and declining formats per platform with how-to-adapt notes. (Template: Step 3.)
- Track cultural moments — build the cultural calendar (events + lead times), conversations to join vs avoid, and seasonal opportunities. (Template: Step 4.)
- Assess trend relevance — for each candidate trend, score audience alignment, brand value fit, content adaptability, risk, and timing (X/25) and land a ✅ participate / ⚠️ caution / ❌ skip call. (Template: Step 5.)
- Monitor competitor trend adoption — record which trends rivals adopted, gaps they missed, and what they overused. (Template: Step 6.)
- Generate the trend report — assemble top-3-act-now, watch list, avoid list, timed action items, format and hashtag strategy, and a next-review date. Save to
memory/influencer/trend-spotter/YYYY-MM-DD-<topic>.mdand promote durable facts tomemory/hot-cache.md. (Template: Step 7.)
Example
User: "What TikTok trends should a fitness brand run right now?"
Output names the top trends to act on now — e.g. "Hot Girl Walk" Evolution (2.3B views, still growing, ⭐⭐⭐⭐⭐ for apparel/supplements via "walk with me" content), "75 Hard" challenge content (⭐⭐⭐⭐, sponsor creators mid-challenge), and GRWM Gym Edition (early-growth, first-mover, ⭐⭐⭐⭐⭐) — with a 15-30s format recommendation (hook in 2s, trending audio, text overlay, quick cuts), hashtags (#FitTok, #GymTok), and a this-week action to brief creators on GRWM Gym Edition. Full version: references/templates.md.
Reference Materials
-
references/templates.md — fill-in templates for every step, the extended worked example, and execution tips.
-
skill-contract.md — shared contract and Handoff Summary format.
-
state-model.md — HOT/WARM/COLD memory tiers and save paths.
-
CONNECTORS.md — free/keyless data recipe per connector category.
-
STAR benchmark scoring at references/star-benchmark.md — for grading trend-driven creative output downstream.
-
Siblings in the scout phase: audience-mapper, influencer-discovery, fit-scorer.
Next Best Skill
- Primary: influencer-discovery — turn the chosen trends into a shortlist of creators who can execute them.
- Alternate: audience-mapper — confirm which trends actually resonate with your audience before committing.
- Alternate: fit-scorer — score which creators fit the chosen trends and the brand before committing.
Termination: keep a visited-set of skills invoked this session. If the primary next skill was already run this turn, stop and report the chain complete rather than re-invoking. Max handoff depth is 3; once reached, summarize and return control to the user.
Frequently asked questions about Trend Spotter
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