kai-data-dashboard · git:20260527.71bf054 · 2026-05-27 · sha256 38a3b2cc23b6125f
kai-data-dashboard git:20260527.71bf054A
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--- name: kai-data-dashboard description: Convert Kai workflow data, CSV exports, audit folders, SDR package outputs, and marketing reports into dashboard-ready specs or lightweight static dashboards. Use when "data dashboard", "operator dashboard", "operator room", "HTML operators room", "sales dashboard", "SDR dashboard", "turn this data into a dashboard", "dashboard handoff", "visualize Kai data", or any request to package sourced marketing, sales, audit, or SDR data for a dashboard or presentation surface. --- # kai-data-dashboard - Data To Dashboard Handoff Turn existing Kai artifacts into a dashboard spec, data contract, or lightweight static dashboard. This skill is a companion surface. It should not replace analytics setup, audit analysis, or outbound strategy. Use `/kai-analytics` when the user needs a tracking plan or attribution model. Use `/kai-html-presentation` when the user needs a client-ready audit deck. Use this skill when the data already exists and needs to become a dashboard-ready operator surface. ## Phase 0: Identify The Source Accept these inputs: - `workspace/sdr-operator/<package-slug>/` - Any folder with `kai-data.json`, `audit-data.json`, `_data-sources.md`, or `_data-gaps.md` - CSV exports from CRM, ESP, sequencer, ads, analytics, or sales tools - Markdown reports with source-backed findings - User-provided metrics and targets If there is no source folder or file, ask for it. Do not fabricate sample data unless the output is explicitly labeled `internal_demo`. ## Phase 1: Load Provenance Before designing the dashboard: 1. Read `_data-sources.md`, `_data-gaps.md`, and available JSON/CSV files. 2. Declare data mode: `sales_external`, `onboarding_connected`, `user_provided`, or `internal_demo`. 3. List unsupported fields as gaps. 4. Do not add numbers that are not present in the source. For audit folders, run: ```bash python scripts/quality_gates/audit_provenance_lint.py <source-folder> --audit-dir ``` ## Phase 2: Choose Dashboard Type Pick the dashboard type from the source and request: | Type | Best Fit | Primary View | |---|---|---| | `sdr_operator_room` | SDR package, lead ledger, reply data | Pipeline state, source quality, next actions | | `marketing_ops` | Campaign, content, SEO, ad, lifecycle data | Channel performance and bottlenecks | | `executive_scorecard` | Monthly/weekly report | KPIs, decisions, risks, next steps | | `audit_delivery` | Audit folder | Findings, scorecards, fixes, data gaps | | `connector_health` | API sync or integration data | Source freshness, failures, missing credentials | Default to `sdr_operator_room` when the source is from `/kai-sdr-operator`. ## Phase 3: Produce Dashboard Artifacts Write output to: ```text <source-folder>/dashboard/ ``` Required files: ```text dashboard-spec.md metrics-dictionary.md data-contract.json source-map.md data-gaps.md ``` Optional file when the user asks for a usable static artifact: ```text index.html ``` Do not build a full frontend app unless the user asks for implementation. For app builds, hand the spec to the relevant frontend skill or repository code. ## Dashboard Spec Requirements Each dashboard spec must include: - Audience: executive, operator, SDR, marketer, client, founder, or analyst. - Jobs to be done. - Metric definitions with exact formulas. - Data source per metric. - Refresh cadence and freshness warning. - Widgets, filters, drilldowns, empty states, and error states. - Alert thresholds with source or hypothesis label. - Permissions and sensitive-data handling. - Handoff notes for frontend, BI, or static HTML build. For SDR dashboards, include: - Status counts by `sourced`, `enriched`, `approved_for_copy`, `queued`, `sent`, `replied`, `meeting_booked`, `disqualified`, `suppressed`, and `blocked`. - Source quality table. - Fit score distribution. - Next-action queue. - Reply triage categories. - Suppression, bounce, opt-out, and complaint warnings. - Data gaps that block live outreach. ## Static HTML Rules If writing `index.html`: - Keep it single-file unless the user requests app integration. - Use tables for dense operator data. - Use restrained styling, readable status colors, and responsive layouts. - Keep critical numbers visible as text, not only canvas or images. - Include a source footer or source drawer. - Include empty states for missing metrics. - Do not hide gaps. Show them as a first-class panel. ## Quality Gates Before handoff: 1. Confirm every number has a source, retrieval date, or `internal_demo` label. 2. Confirm every metric has a formula or definition. 3. Confirm `_data-gaps.md` or `data-gaps.md` is represented. 4. Confirm no placeholder text remains. 5. Confirm sensitive fields are either excluded, masked, or explicitly approved. 6. If HTML is produced, check desktop and mobile readability. ## Output Summary Final response should include: - Dashboard folder path. - Dashboard type. - Files produced. - Data gaps. - Whether a static HTML dashboard was built or only specified.