Skill 詳細
meta-reporting
Relevant Meta performance reporting and dashboards, but not broader campaign management.
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SKILL.md
これはレビュー時に保存された抜粋です。完全で最新の内容は外部ソースを確認してください。
--- name: "meta-reporting" title: Meta ads reporting description: | Use this skill when analyzing or reporting Meta Ads performance — pulls live Meta insights, reads them like an operator (leading vs vanity signals), and generates a shareable branded HTML dashboard. Triggers: Meta report, Meta dashboard, Meta performance, analyze Meta ads, cost per lead, CPL report, Meta account audit, weekly Meta report, client dashboard, ad spend report. category: Ads --- # Meta Ads Reporting and Dashboards Turn raw Meta numbers into a decision. This skill pulls live performance, analyzes it against the operating system in the `meta-ads` skill, and renders a clean, client-ready dashboard. ## What this covers 1. **Performance analysis** - pull live spend, leads, CPL, CTR, CPM, reach at account and campaign level, then read it like an operator (leading vs vanity signals). 2. **Reporting** - weekly or period-over-period rollups: what changed, what is working, what to fix first. 3. **Dashboards** - a self-contained HTML dashboard branded with the Frontal logo, that you open in a browser or send to a client. ## Scripts Run from `.claude/skills/meta-ads/scripts/` (shared client + `.env`) unless noted. | Task | Command | |------|---------| | Account snapshot (all KPIs, one call) | `python account_overview.py` | | Campaign performance table | `python get_campaign_performance.py --date-preset last_30d` | | Pull active ad copy (for a creative/audit read) | `python get_active_ads_copy.py` | | **Branded HTML dashboard** | `cd ../../meta-reporting/scripts && python generate_dashboard.py --date-preset last_30d` | ### The dashboard (with your logo) `generate_dashboard.py` writes a shareable HTML file: KPI tiles (spend, leads, cost per lead, CTR, CPM, reach) plus a per-campaign table, sorted by spend. ```bash cd .claude/skills/meta-reporting/scripts python generate_dashboard.py # last 30 days -> meta-dashboard.html python generate_dashboard.py --date-preset last_7d --out weekly.html ``` **It ships with the Frontal logo by default. It's your dashboard - rebrand it:** - Set `DASHBOARD_LOGO_URL` and `DASHBOARD_BRAND_NAME` in `.env`, or - Pass `--logo https://yourbrand.com/logo.png --brand "Your Brand"`. No image API, no external service - just the Meta API and Python. Open it with `open meta-dashboard.html` or attach the file to an email. ## How to analyze (not just report) Reporting is describing the numbers. Analysis is deciding what to do. Always: 1. **Lead with the outcome metric, not vanity.** Cost per lead and lead volume first. Impressions, reach, and CPM are context, never the headline. (See [/skill/ads-measurement-scorecard](/skill/ads-measurement-scorecard).) 2. **Separate leading from lagging signals.** CTR and CPM move first; CPL and lead volume confirm. A rising CPM with flat CPL is fine; a rising CPL is the alarm. 3. **Read at the right altitude.** Account -> campaign -> ad set -> ad. Find the level where the money is leaking before recommending a fix. 4. **Tie every number to an action.** "CPL up 40% week over week, driven by the retargeting campaign fatiguing (frequency 4.2). Action: rotate creative, cap frequency." Not "CPL went up." 5. **Never fabricate a benchmark.** If you do not have the account's own history, say so. Use the B2B benchmarks in `meta-ads/knowledge-base/optimization-playbook.md` as reference ranges, labeled as such. ## Output standards - Dashboards are client-ready: clean, branded, no jargon, no source citations. - Written reports lead with wins, then concerns, with week-over-week numbers at the campaign level. - Follow [/skill/ads-writing-style](/skill/ads-writing-style) for everything you write. No AI slop, no em dashes, no emoji.GitHub で全文を読む (外部ページ)