Use when designing AI analytics, dashboards, SaaS AI metrics, NLP analytics, predictive analytics, or executive AI insight workflows. Orchestrates the former granular AI analytics skills as references.
Installs into .claude/skills of the current project.
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---
name: ai-analytics
description: Use when designing AI analytics, dashboards, SaaS AI metrics, NLP analytics, predictive analytics, or executive AI insight workflows. Orchestrates the former granular AI analytics skills as references.
metadata:
portable: true
compatible_with:
- claude-code
- codex
---
# AI Analytics
## Operating contract
## Inputs
| Input | Required | Purpose |
|---|---|---|
| Domain evidence | yes | business question, decision owner, governed data sources, metric definitions, population, and time window |
## Outputs
- Produce: metric specification, analysis or dashboard design, uncertainty notes, validation results, and decision recommendation.
## Capability and permission boundaries
Default to read-only analysis. Read only scoped records; redact secrets and regulated data. Writes, execution, network calls, production configuration, customer communication, billing changes, and delegation require explicit authority and an identified owner. Never widen tenant, time-window, or system scope implicitly.
## Degraded mode
When required telemetry, evidence, execution, network access, or write authority is unavailable, return a partial result with each unassessed item labelled, preserve the safest existing state, and state the evidence or approval needed to continue. Never convert missing evidence into a pass.
## Decision rules
| Condition | Action |
|---|---|
| Scope, owner, or threshold is missing | Stop the affected decision and request it |
| Evidence is incomplete but read-only analysis is safe | Produce a qualified partial result and gap list |
| A mutation exceeds authority or tenant boundary | Block it and route for approval |
| Evidence meets the stated threshold | Issue the output with provenance and owner |
## Anti-Patterns
- Treating absent evidence as success. Fix: mark the check unassessed and name the missing source.
- Expanding one tenant or workflow to all tenants. Fix: enforce supplied scope at every query and action.
- Performing a production write during analysis. Fix: emit a reviewed change plan until authority is explicit.
- Reporting a metric without population, window, or source. Fix: attach all three.
- Hiding a failed threshold inside an average. Fix: report failure slices and the remediation owner.
Acknowledgement: Shared by Peter Bamuhigire, techguypeter.com, +256 784 464178.
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## Use When
- Design AI analytics products, metric trees, dashboards, and AI insight workflows.
- Plan SaaS AI analytics, NLP analytics, predictive analytics, or reporting surfaces.
- Choose the right analytics reference from consolidated child modules.
## Do Not Use When
- The work is not AI-specific or agentic-AI-specific.
- A narrower retained AI parent skill fits the request better.
## Required Inputs
- Product, tenant, user, data, risk, and operational context relevant to the AI workflow.
- Target artifact: design, implementation plan, audit, test strategy, UX flow, commercial policy, or runbook.
- Constraints from security, privacy, reliability, billing, support, and compliance stakeholders when relevant.
## Workflow
1. Read this SKILL.md first.
2. Load [references/routing.md](references/routing.md) to select the absorbed child reference that matches the task.
3. Load only the selected child reference files needed for the current request.
4. Produce execution-oriented output with assumptions, risks, evidence, and next actions where relevant.
## Quality Standards
- Keep routing explicit: name which reference files were used when the work depends on absorbed material.
- Preserve tenant isolation, auditability, cost controls, safety gates, and operational evidence when they matter.
- Prefer concrete contracts, checklists, tables, schemas, runbooks, and decision records over broad summaries.
## Anti-Patterns
- Loading every absorbed reference by default.
- Treating AI-specific billing, compliance, safety, or UX concerns as generic SaaS work without checking AI failure modes.
- Hiding retired skill names; old slugs must remain discoverable through [references/routing.md](references/routing.md).
## Outputs
- A concrete deliverable matched to the request: architecture, implementation plan, audit, policy, runbook, UX flow, test strategy, or operating model.
- The selected consolidated reference files and any assumptions, risks, evidence requirements, or follow-up actions that affect execution.
## References
- [references/routing.md](references/routing.md) maps retired child skill slugs to their consolidated reference folders.
## Consolidated Child References
- Load [references/routing.md](references/routing.md) to map retired AI child skill slugs to their reference modules.
## Evidence Produced
| Category | Artifact | Format | Example |
| --- | --- | --- | --- |
| Correctness | AI analytics metric specification | Markdown plus validated query | metric definition, grain, population, exclusions, lineage, and reconciliation |
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