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Ai Domain Insurance Claims Automation Skill 2026

ASecurity

Despliega soluciones de IA para insurance claims automation con arquitectura modular, metricas auditables y decisiones alineadas al contexto del dominio.

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  • Added May 27, 2026
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Scanned May 27, 2026

npx -y skills add FDU-INS/Insurance-Skills --skill ai-domain-insurance-claims-automation-skill-2026 --agent claude-code

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SKILL.md
---
name: "ai-domain-insurance-claims-automation-skill-2026"
description: "Despliega soluciones de IA para insurance claims automation con arquitectura modular, metricas auditables y decisiones alineadas al contexto del dominio."
version: "1.0.0"
domain: "domain-ai"
quality_tier: "expert"
compatibility:
  - claude-code
  - codex
owner: "yonatanguerrerosoriano"
tags:
  - "domain-ai"
  - "industry-ai"
  - "automation"
  - "decision-systems"
  - "2026"
foundation_skills:
  - "optimization-foundations"
  - "probability-foundations"
  - "statistics-inference-foundations"
  - "testing-verification-foundations"
  - "security-threat-modeling-foundations"
  - "debugging-causal-reasoning-foundations"
---

# Ai Domain Insurance Claims Automation Skill 2026 Skill

## Mission
Despliega soluciones de IA para insurance claims automation con arquitectura modular, metricas auditables y decisiones alineadas al contexto del dominio.

## When to use
- When the user asks for a repeatable workflow in this domain.
- When a specialized checklist improves speed or quality.

## Inputs expected
- Task objective and expected output.
- Relevant files, paths, or system constraints.
- Any non-negotiable requirements (security, style, deadlines).

## Workflow
1. Understand scope, assumptions, and risks.
2. Execute the workflow in a deterministic order.
3. Verify outcomes and report any limitations clearly.

## Output contract
Provide results in this order: key outcome, concrete changes, validation status, next steps.

## Guardrails
- Never fabricate facts, outputs, or tool results.
- Ask for confirmation before destructive operations.
- Prefer minimal, reversible changes when uncertain.

## Foundations
- `optimization-foundations`
- `probability-foundations`
- `statistics-inference-foundations`
- `testing-verification-foundations`
- `security-threat-modeling-foundations`
- `debugging-causal-reasoning-foundations`


## Logical reliability checklist
- Assumptions are explicit and separated from verified facts.
- The solution path is justified with clear reasoning steps.
- Edge cases and contradiction checks are included.
- Output is testable, auditable, and reversible when possible.

## Example prompts
- "Apply the ai-domain-insurance-claims-automation-skill-2026 skill to handle this task end-to-end."
- "Run ai-domain-insurance-claims-automation-skill-2026 and produce a production-ready output with validation notes."

Files in this skill

  • README.md899 B
  • SKILL.md2.4 KB
  • examples/prompts.md406 B
  • references/quality-gates.md660 B
  • skill.meta.json830 B

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