Agent skill

Apify Audience Analysis

by sickn33 in sickn33/agentic-awesome-skills

Understand audience demographics, preferences, behavior patterns, and engagement quality across Facebook, Instagram, YouTube, and TikTok.

MITAuto-check: notesData & Analytics

Install Apify Audience Analysis

skills CLI
$ npx skills add sickn33/agentic-awesome-skills --skill apify-audience-analysis -a claude-code

Project install by default; add -g for ~/.claude/skills/.

GitHub CLI
$ gh skill install sickn33/agentic-awesome-skills apify-audience-analysis --agent claude-code

Project scope by default; add --scope user for a personal install. Needs GitHub CLI 2.90.0 or later (public preview).

Manual copy
$ git clone --depth 1 https://github.com/sickn33/agentic-awesome-skills.git skills-src && mkdir -p .claude/skills && cp -r skills-src/skills/apify-audience-analysis .claude/skills/apify-audience-analysis && rm -rf skills-src

Use ~/.claude/skills/ instead of .claude/skills for a personal install. The folder must contain SKILL.md.

Claude Code skills documentation · loads skills from .claude/skills/

Facts

Skill name
apify-audience-analysis
GitHub stars
47k
Used in
2 other repos
Token cost
~1.3k tokens
SKILL.md length
460 words
Files
2
Skills in repo
1,493
Repo updated
First seen
Licence
MIT

At a glance

Understand audience demographics, preferences, behavior patterns, and engagement quality across Facebook, Instagram, YouTube, and TikTok.

  • Works in 5 steps: Identify Audience Analysis Type → Fetch Actor Schema → Ask User Preferences → …
  • Tasks that involve Web scraping
  • SKILL.md covers When to Use, Prerequisites, Workflow and Error Handling, plus 1 more section
  • Runs JavaScript scripts from its folder; calls node, npm and jq; needs APIFY_TOKEN

What it does

Apify Audience Analysis is an agent skill from sickn33/agentic-awesome-skills. Understand audience demographics, preferences, behavior patterns, and engagement quality across Facebook, Instagram, YouTube, and TikTok.

Its SKILL.md is about 1.3k tokens, which your agent loads only when the skill is triggered. The skill folder holds 3 other files (for example `reference/scripts/run_actor.js`).

It sits in Data & Analytics, covering Web scraping. It works with Apify, Instagram, YouTube and TikTok. The repository describes itself as: AAS Core is the local, agent-first control plane for complete catalog discovery, agent-owned selection, stack validation, and planning, backed by 2,400+ agentic skills. Includes… The licence is MIT.

When your agent uses it

  • Tasks that involve Web scraping

Example prompts

  • “/apify-audience-analysis”

Requirements

  • Node.js
  • A credential in APIFY_TOKEN

Workflow steps

5 steps, taken from the step headings in SKILL.md.

  1. Identify Audience Analysis Type
  2. Fetch Actor Schema
  3. Ask User Preferences
  4. Run the Script
  5. Summarize Findings

What it can do on your machine

Read from SKILL.md and the folder at commit 680176d. It shows what the files ask for, not the result of running them.

  • Tool permissions

    Pre-approves nothing: there is no allowed-tools line, so your agent's usual permission prompts apply.

    From allowed-tools in the SKILL.md frontmatter.

  • Runs code

    Ships script files (JavaScript), which the agent can run.

    Shell commands in SKILL.md call:

    • node
    • npm
    • jq

    From the folder's file list and the shell code blocks in SKILL.md.

  • Network

    No URLs in SKILL.md. Its commands use npm, which can reach the network depending on how they are called.

    From URLs in SKILL.md, links to its own repository left out.

  • Credentials

    Names these keys or tokens, usually read from environment variables:

    • APIFY_TOKEN

    From names ending in _API_KEY, _TOKEN, _SECRET, _KEY or _PASSWORD in SKILL.md.

Context cost

Apify Audience Analysis loads about 1.3k tokens when it runs. Until then it costs about 40 tokens; SKILL.md has 460 words of instructions outside code blocks.

Always · name and description, kept in context so the agent knows when to use it
~40
When it runs · the whole SKILL.md, loaded when a task matches
~1.3k

Estimates: characters ÷ 4, the usual rule of thumb; real counts depend on the model's tokenizer. Scripts and assets cost tokens only if the agent reads them.

Safety

Auto-check: notes

The automated check noted patterns worth knowing about, such as sudo or a known installer.

  • NoteMentions a .env fileSKILL.md:21
    - `.env` file with `APIFY_TOKEN`
  • NoteMentions a .env fileSKILL.md:68
    export $(grep APIFY_TOKEN .env | xargs) && mcpc --json mcp.apify.com --header "Authorization: Bearer $APIFY_TOKEN" tools
  • NoteMentions a .env fileSKILL.md:91
    node --env-file=.env ${CLAUDE_PLUGIN_ROOT}/reference/scripts/run_actor.js \
  • NoteMentions a .env fileSKILL.md:98
    node --env-file=.env ${CLAUDE_PLUGIN_ROOT}/reference/scripts/run_actor.js \
  • NoteMentions a .env fileSKILL.md:107
    node --env-file=.env ${CLAUDE_PLUGIN_ROOT}/reference/scripts/run_actor.js \
  • NoteMentions a .env fileSKILL.md:124
    Y_TOKEN not found` - Ask user to create `.env` with `APIFY_TOKEN=your_token`

Automated static check — not a guarantee. Review scripts before installing. It scans the text of SKILL.md for risky patterns (piping downloads into a shell, reading credential files, hidden Unicode, destructive commands); files beside SKILL.md are not scanned.

SKILL.md

The full file from sickn33/agentic-awesome-skills at commit 680176d, republished under its MIT licence (© sickn33). 460 words, ~1,330 tokens.

Download SKILL.mdSave it as .claude/skills/apify-audience-analysis/SKILL.md (or your agent's skills folder). This skill also uses 1 other file; get the full folder from GitHub.
name
apify-audience-analysis
description
Understand audience demographics, preferences, behavior patterns, and engagement quality across Facebook, Instagram, YouTube, and TikTok.
risk
critical
source
community
date_added
2026-09-04

Audience Analysis

Analyze and understand your audience using Apify Actors to extract follower demographics, engagement patterns, and behavior data from multiple platforms.

When to Use

  • You need audience demographics, engagement patterns, or follower behavior from social platforms.
  • The task is to choose and run Apify Actors for audience analysis across Facebook, Instagram, YouTube, or TikTok.
  • You need structured extraction plus a summarized interpretation of audience findings.

Prerequisites

(No need to check it upfront)

  • .env file with APIFY_TOKEN
  • Node.js 20.6+ (for native --env-file support)
  • mcpc CLI tool: npm install -g @apify/mcpc

Workflow

Copy this checklist and track progress:

Task Progress:
- [ ] Step 1: Identify audience analysis type (select Actor)
- [ ] Step 2: Fetch Actor schema via mcpc
- [ ] Step 3: Ask user preferences (format, filename)
- [ ] Step 4: Run the analysis script
- [ ] Step 5: Summarize findings
Step 1: Identify Audience Analysis Type

Select the appropriate Actor based on analysis needs:

User NeedActor IDBest For
Facebook follower demographicsapify/facebook-followers-following-scraperFB followers/following lists
Facebook engagement behaviorapify/facebook-likes-scraperFB post likes analysis
Facebook video audienceapify/facebook-reels-scraperFB Reels viewers
Facebook comment analysisapify/facebook-comments-scraperFB post/video comments
Facebook content engagementapify/facebook-posts-scraperFB post engagement metrics
Instagram audience sizingapify/instagram-profile-scraperIG profile demographics
Instagram location-basedapify/instagram-search-scraperIG geo-tagged audience
Instagram tagged networkapify/instagram-tagged-scraperIG tag network analysis
Instagram comprehensiveapify/instagram-scraperFull IG audience data
Instagram API-basedapify/instagram-api-scraperIG API access
Instagram follower countsapify/instagram-followers-count-scraperIG follower tracking
Instagram comment exportapify/export-instagram-comments-postsIG comment bulk export
Instagram comment analysisapify/instagram-comment-scraperIG comment sentiment
YouTube viewer feedbackstreamers/youtube-comments-scraperYT comment analysis
YouTube channel audiencestreamers/youtube-channel-scraperYT channel subscribers
TikTok follower demographicsclockworks/tiktok-followers-scraperTT follower lists
TikTok profile analysisclockworks/tiktok-profile-scraperTT profile demographics
TikTok comment analysisclockworks/tiktok-comments-scraperTT comment engagement
Step 2: Fetch Actor Schema

Fetch the Actor's input schema and details dynamically using mcpc:

bash
export $(grep APIFY_TOKEN .env | xargs) && mcpc --json mcp.apify.com --header "Authorization: Bearer $APIFY_TOKEN" tools-call fetch-actor-details actor:="ACTOR_ID" | jq -r ".content"

Replace ACTOR_ID with the selected Actor (e.g., apify/facebook-followers-following-scraper).

This returns:

  • Actor description and README
  • Required and optional input parameters
  • Output fields (if available)
Show full SKILL.md (177 more words)Show less
Step 3: Ask User Preferences

Before running, ask:

  1. Output format:
    • Quick answer - Display top few results in chat (no file saved)
    • CSV - Full export with all fields
    • JSON - Full export in JSON format
  2. Number of results: Based on character of use case
Step 4: Run the Script

Quick answer (display in chat, no file):

bash
node --env-file=.env ${CLAUDE_PLUGIN_ROOT}/reference/scripts/run_actor.js \
  --actor "ACTOR_ID" \
  --input 'JSON_INPUT'

CSV:

bash
node --env-file=.env ${CLAUDE_PLUGIN_ROOT}/reference/scripts/run_actor.js \
  --actor "ACTOR_ID" \
  --input 'JSON_INPUT' \
  --output YYYY-MM-DD_OUTPUT_FILE.csv \
  --format csv

JSON:

bash
node --env-file=.env ${CLAUDE_PLUGIN_ROOT}/reference/scripts/run_actor.js \
  --actor "ACTOR_ID" \
  --input 'JSON_INPUT' \
  --output YYYY-MM-DD_OUTPUT_FILE.json \
  --format json
Step 5: Summarize Findings

After completion, report:

  • Number of audience members/profiles analyzed
  • File location and name
  • Key demographic insights
  • Suggested next steps (deeper analysis, segmentation)

Error Handling

APIFY_TOKEN not found - Ask user to create .env with APIFY_TOKEN=your_token mcpc not found - Ask user to install npm install -g @apify/mcpc Actor not found - Check Actor ID spelling Run FAILED - Ask user to check Apify console link in error output Timeout - Reduce input size or increase --timeout

Limitations

  • Use this skill only when the task clearly matches the scope described above.
  • Do not treat the output as a substitute for environment-specific validation, testing, or expert review.
  • Stop and ask for clarification if required inputs, permissions, safety boundaries, or success criteria are missing.

© sickn33, MIT. Rendered from Markdown: HTML in the file is shown as text, images as links, and headings moved down two levels. Raw file

Files

SKILL.md and 1 other file in skills/apify-audience-analysis of sickn33/agentic-awesome-skills.

  • SKILL.md
  • reference/scripts/run_actor.js

Open the folder on GitHubat commit 680176d

Used in 2 other repositories

We found 11 copies of this SKILL.md (exact, near-identical or edited) in other folders, from 2 other GitHub owners. This page covers the copy in sickn33/agentic-awesome-skills, which our catalogue first saw on October 9, 2026.

Compare with similar skills

Apify Audience Analysis next to the 5 skills that share the most tags, products or categories with it. Stars are the repository's; “used in” counts other GitHub owners with a copy.

Apify Audience Analysis compared with similar skills
SkillStarsUsed inTokensAuto-checkLicenceRepo updated
Apify Audience Analysis this skillsickn33/agentic-awesome-skills47k2 repos~1.3kAutomated safety check: NotesMIT
Apify Competitor IntelligenceaAAaqwq/AGI-Super-Team1053 repos~1.3kAutomated safety check: NotesMIT
Apify Creator Emailsapify/awesome-skills265—~3.9kAutomated safety check: PassApache-2.0
Google Maps ScraperMahanaicoach/google-maps-scraper-kit1.3k—~2.8kAutomated safety check: PassMIT
Content Ideasbradautomates/content-ideas133—~5.4kAutomated safety check: NotesMIT
Data Feedsbrightdata/skills264—~2.2kAutomated safety check: PassMIT

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Questions about Apify Audience Analysis

What does Apify Audience Analysis do?

Understand audience demographics, preferences, behavior patterns, and engagement quality across Facebook, Instagram, YouTube, and TikTok. Apify Audience Analysis is an agent skill from sickn33/agentic-awesome-skills. Understand audience demographics, preferences, behavior patterns, and engagement quality across Facebook, Instagram, YouTube, and TikTok.

When should I use Apify Audience Analysis?

Apify Audience Analysis fits situations like: tasks that involve Web scraping.

How do I install Apify Audience Analysis in Claude Code?

Run `npx skills add sickn33/agentic-awesome-skills --skill apify-audience-analysis -a claude-code`. Or copy the skill folder (skills/apify-audience-analysis in sickn33/agentic-awesome-skills) into .claude/skills/apify-audience-analysis in your project. Claude Code loads it when a task matches its description.

How do I install Apify Audience Analysis in Codex?

Run `npx skills add sickn33/agentic-awesome-skills --skill apify-audience-analysis -a codex`. Or copy the skill folder (skills/apify-audience-analysis in sickn33/agentic-awesome-skills) into .agents/skills/apify-audience-analysis in your project. Codex loads it when a task matches its description.

Can I use Apify Audience Analysis in Cursor, Gemini CLI or GitHub Copilot?

Cursor, Gemini CLI, GitHub Copilot and OpenCode also load SKILL.md folders. With the skills CLI, run `npx skills add sickn33/agentic-awesome-skills --skill apify-audience-analysis -a cursor` (or -a gemini-cli, github-copilot or opencode for the others). To copy it by hand, put the folder in .cursor/skills/apify-audience-analysis, .gemini/skills/apify-audience-analysis, .github/skills/apify-audience-analysis and .opencode/skills/apify-audience-analysis in your project.

What does Apify Audience Analysis need to run?

Going by SKILL.md and its folder, Apify Audience Analysis needs JavaScript for the scripts in its folder, the command-line tools its instructions call (node, npm and jq) and credentials named APIFY_TOKEN. Our summary lists: Node.js; A credential in APIFY_TOKEN.

Does Apify Audience Analysis access the network?

SKILL.md contains no URLs. Its commands use npm, which can reach the network depending on how they are called. This is read from the text; nothing was executed.

Is Apify Audience Analysis safe to install?

Our automated static check of SKILL.md found notes only (mentions a .env file), nothing it rates as a warning. It is not a guarantee. Review the folder before installing.

What licence does Apify Audience Analysis use?

Apify Audience Analysis is published under the MIT licence (the repository's licence). It allows redistribution, so the full SKILL.md is shown on this page.

How many tokens does Apify Audience Analysis use?

About 1.3k tokens (SKILL.md is roughly 5.3k characters). Agents keep only the skill's name and description in context until a task matches; then they load SKILL.md in full.

What are the alternatives to Apify Audience Analysis?

Skills that share tags, products or a category with Apify Audience Analysis: Apify Competitor Intelligence (aAAaqwq/AGI-Super-Team, 105 stars), Apify Creator Emails (apify/awesome-skills, 265 stars), Google Maps Scraper (Mahanaicoach/google-maps-scraper-kit, 1.3k stars) and Content Ideas (bradautomates/content-ideas, 133 stars). The comparison table on this page puts their stars, adoption, token cost, safety result and licence side by side.

Who maintains Apify Audience Analysis?

sickn33 (a GitHub user) maintains it in sickn33/agentic-awesome-skills, which has 47,379 GitHub stars. The repository holds 1,493 skills in this directory. The repository was last updated on October 9, 2026.

Source: sickn33/agentic-awesome-skills on GitHub. Facts on this page come from the repository at the commit we read; the author's words are quoted as theirs.