# Common System Design

> Define module boundaries, dependency direction, data ownership, resilience, and distributed-system trade-offs. Use for architecture, service boundaries, coupling, scalability, or failure-cascade decisions; not generic project setup.

- Skill: `tuyv/common-system-design` (Agent Skill, multi-file: 4 files)
- Install (CLI): `npx skillmds@latest add tuyv/common-system-design`
- Raw SKILL.md: https://api.skillmd.com/api/skills/tuyv/common-system-design/raw
- Safety review: pending
- Works with: Claude Code, Claude.ai, OpenAI Codex
- Category: AI & ML
- Author: tuyv (https://skillmd.com/u/tuyv)
- Updated: 2026-09-17
- Page: https://skillmd.com/skills/tuyv/common-system-design

---


# System Design & Architecture Standards

## **Priority: P0 (CRITICAL)**

## Workflow: Evaluate Architecture for New Feature

1. Identify bounded contexts and module boundaries
2. Name the data owner and define dependency direction (outer layers depend on inner)
3. Select communication pattern (sync REST, async event, or hybrid) and failure behavior
4. Validate CAP trade-offs only for distributed components
5. Record boundary, trade-off, and rollback in an ADR

For a failing synchronous dependency, keep the critical path explicit: timeout and circuit-break the dependency, return a defined degraded/fallback result where safe, and move non-critical notifications to an asynchronous event.

## Architectural Principles

- **SoC**: Divide into distinct sections per concern.
- **SSOT**: One source, reference elsewhere.
- **Fail Fast**: Fail visibly when errors occur.
- **Graceful Degradation**: Core functional even if secondary fails.

## Modularity & Coupling

- **High Cohesion**: Related functionality in one module.
- **Loose Coupling**: Use interfaces for communication.
- **DI**: Inject dependencies, don't hardcode.

See [implementation examples](references/implementation.md) for dependency flow diagrams.

## Common Patterns

- **Layered**: Presentation -> Logic -> Data.
- **Event-Driven**: Async communication between decoupled components.
- **Clean/Hexagonal**: Core logic independent of frameworks.
- **Statelessness**: Favor stateless for scaling/testing.

## Distributed Systems

- **CAP**: Trade-off Consistency/Availability/Partition tolerance. See [CAP & Consistency Patterns](references/distributed-systems.md).
- **Idempotency**: Operations repeatable without side effects. See [Idempotency Patterns](references/distributed-systems.md#idempotency).
- **Circuit Breaker**: Fail fast on failing services. See [Resilience Patterns](references/resilience-patterns.md).
- **Eventual Consistency**: Design for async data sync. See [CAP & Consistency Patterns](references/distributed-systems.md#eventual-consistency).

## Documentation & Evolution

- **Design Docs**: Write specs before major implementations.
- **Versioning**: Version APIs/schemas for backward compatibility.
- **Extensibility**: Use Strategy/Factory for future changes.

## References

- [Distributed Systems & CAP Theorem](references/distributed-systems.md)
- [Resilience Patterns (Circuit Breaker, Bulkhead, Retry)](references/resilience-patterns.md)

## Anti-Patterns

- **No god classes**: Single Responsibility — one reason to change per module.
- **No synchronous coupling**: Prefer events or queues for cross-service calls.
- **No premature abstraction**: Design for current load; scale when proven needed.

