Table of Contents
The Layered (N-Tier) Architecture Paradigm
When to Employ This Paradigm
- When teams need clear architectural boundaries and a familiar structure for moderate-sized systems.
- When compliance or operations teams require clear separation of concerns (e.g., UI vs. domain logic vs. persistence).
- When the deployment artifact remains a monolith, but code clarity and separation are degrading.
When NOT To Use This Paradigm
- When high scalability demands require independent scaling of components
- When multiple teams need independent deployment cycles
- When complex business logic requires frequent cross-layer communication
- When microservices architecture is already planned or in place
- When real-time processing requirements make layered communication too slow
Adoption Steps
- Define the Layers: Establish a clear set of layers. A common stack includes: Presentation -> Application/Service -> Domain -> Data Access.
- Enforce Dependency Direction: Code in a given layer may only depend on the layer immediately below it. Forbid any "upward" dependencies or imports.
- Centralize Cross-Cutting Concerns: Implement concerns like logging, authentication, and validation as centralized middleware or policies, rather than duplicating this logic in each layer.
- Test Each Layer Appropriately: Apply testing strategies suitable for each layer, such as unit tests for the domain layer, service-layer tests for orchestration logic, and integration tests for persistence adapters.
- Document and Enforce Interactions: Maintain up-to-date dependency diagrams and use automated architecture tests to prevent developers from creating "shortcut" dependencies that violate the layering rules.
Key Deliverables
- An Architecture Decision Record (ADR) that captures the responsibilities of each layer, the allowed dependencies between them, and the policy for any exceptions.
- A formal dependency diagram stored with the project documentation.
- Automated architectural checks (e.g., using ArchUnit, dep-cruise, or custom scripts) to prevent rule violations from being merged.
Technology Guidance
Layer Implementation Patterns:
- Presentation Layer: React/Vue/Angular (Frontend), MVC Controllers (Backend)
- Application Layer: Service classes, Application services, Use case orchestrators
- Domain Layer: Business entities, Domain services, Business rules validation
- Data Access Layer: Repository pattern, ORM mappers, Data access objects (DAO)
Architecture Enforcement Tools:
- Java: ArchUnit for dependency rule testing
- JavaScript/TypeScript: ESLint rules with dependency tracking
- C#: NDepend for architectural analysis
- Python: Custom decorators and import analysis tools
Common Layer Stacks:
- 3-Layer: Presentation → Business Logic → Data Access
- 4-Layer: Presentation → Application → Domain → Infrastructure
- 5-Layer: UI → Controller → Service → Domain → Persistence
Real-World Examples
Enterprise ERP Systems: SAP and Oracle ERP use layered architecture to separate user interfaces from business logic and database operations, enabling different frontend applications to share the same business rules.
Banking Applications: Financial institutions employ layered architecture to maintain strict separation between customer-facing interfaces, transaction processing, and secure data storage for regulatory compliance.
E-commerce Platforms: Traditional e-commerce sites use layered architecture to separate product catalogs, shopping cart logic, order processing, and payment handling into distinct layers.
Risks & Mitigations
- Excessive Rigidity and Latency:
- Mitigation: For features that span multiple layers, strict adherence can lead to excessive "pass-through" code and increased latency. In such cases, consider using a Façade pattern to provide a more direct interface where appropriate.
- "Leaky" Layers:
- Mitigation: Developers may be tempted to bypass architectural rules for expediency, which degrades the architecture. Treat all architectural violations as build-breaking failures or critical issues in code review.
Concrete Components
These vocabulary items name the concrete tools and abstractions
that show up when the paradigm is implemented. They are not
required dependencies and they are not part of the skill's
tools: frontmatter (which is reserved for Claude Code tool
restrictions). Use this list to disambiguate during architecture
discussions.
dependency-validator: fails the build when a layer imports above its allowed depth
layer-enforcer: static-analysis gate that checks namespaces match layer rules
architecture-compliance-checker: diffs the implemented layer graph against the documented one
Exit Criteria
1---2name: architecture-paradigm-layered-23description: Applies layered n-tier architecture with enforced boundaries. Use when designing moderate systems needing clear presentation, domain, and persistence layers.4---5## Table of Contents67- [When to Employ This Paradigm](#when-to-employ-this-paradigm)8- [When NOT to Use This Paradigm](#when-not-to-use-this-paradigm)9- [Adoption Steps](#adoption-steps)10- [Key Deliverables](#key-deliverables)11- [Technology Guidance](#technology-guidance)12- [Risks & Mitigations](#risks-mitigations)1314# The Layered (N-Tier) Architecture Paradigm1516## When to Employ This Paradigm17- When teams need clear architectural boundaries and a familiar structure for moderate-sized systems.18- When compliance or operations teams require clear separation of concerns (e.g., UI vs. domain logic vs. persistence).19- When the deployment artifact remains a monolith, but code clarity and separation are degrading.2021## When NOT To Use This Paradigm22- When high scalability demands require independent scaling of components23- When multiple teams need independent deployment cycles24- When complex business logic requires frequent cross-layer communication25- When microservices architecture is already planned or in place26- When real-time processing requirements make layered communication too slow2728## Adoption Steps291. **Define the Layers**: Establish a clear set of layers. A common stack includes: Presentation -> Application/Service -> Domain -> Data Access.302. **Enforce Dependency Direction**: Code in a given layer may only depend on the layer immediately below it. Forbid any "upward" dependencies or imports.313. **Centralize Cross-Cutting Concerns**: Implement concerns like logging, authentication, and validation as centralized middleware or policies, rather than duplicating this logic in each layer.324. **Test Each Layer Appropriately**: Apply testing strategies suitable for each layer, such as unit tests for the domain layer, service-layer tests for orchestration logic, and integration tests for persistence adapters.335. **Document and Enforce Interactions**: Maintain up-to-date dependency diagrams and use automated architecture tests to prevent developers from creating "shortcut" dependencies that violate the layering rules.3435## Key Deliverables36- An Architecture Decision Record (ADR) that captures the responsibilities of each layer, the allowed dependencies between them, and the policy for any exceptions.37- A formal dependency diagram stored with the project documentation.38- Automated architectural checks (e.g., using ArchUnit, dep-cruise, or custom scripts) to prevent rule violations from being merged.3940## Technology Guidance4142**Layer Implementation Patterns**:43- **Presentation Layer**: React/Vue/Angular (Frontend), MVC Controllers (Backend)44- **Application Layer**: Service classes, Application services, Use case orchestrators45- **Domain Layer**: Business entities, Domain services, Business rules validation46- **Data Access Layer**: Repository pattern, ORM mappers, Data access objects (DAO)4748**Architecture Enforcement Tools**:49- **Java**: ArchUnit for dependency rule testing50- **JavaScript/TypeScript**: ESLint rules with dependency tracking51- **C#**: NDepend for architectural analysis52- **Python**: Custom decorators and import analysis tools5354**Common Layer Stacks**:55- **3-Layer**: Presentation → Business Logic → Data Access56- **4-Layer**: Presentation → Application → Domain → Infrastructure57- **5-Layer**: UI → Controller → Service → Domain → Persistence5859## Real-World Examples6061**Enterprise ERP Systems**: SAP and Oracle ERP use layered architecture to separate user interfaces from business logic and database operations, enabling different frontend applications to share the same business rules.6263**Banking Applications**: Financial institutions employ layered architecture to maintain strict separation between customer-facing interfaces, transaction processing, and secure data storage for regulatory compliance.6465**E-commerce Platforms**: Traditional e-commerce sites use layered architecture to separate product catalogs, shopping cart logic, order processing, and payment handling into distinct layers.6667## Risks & Mitigations68- **Excessive Rigidity and Latency**:69 - **Mitigation**: For features that span multiple layers, strict adherence can lead to excessive "pass-through" code and increased latency. In such cases, consider using a Façade pattern to provide a more direct interface where appropriate.70- **"Leaky" Layers**:71 - **Mitigation**: Developers may be tempted to bypass architectural rules for expediency, which degrades the architecture. Treat all architectural violations as build-breaking failures or critical issues in code review.7273## Concrete Components7475These vocabulary items name the concrete tools and abstractions76that show up when the paradigm is implemented. They are not77required dependencies and they are not part of the skill's78``tools:`` frontmatter (which is reserved for Claude Code tool79restrictions). Use this list to disambiguate during architecture80discussions.8182- ``dependency-validator``: fails the build when a layer imports above its allowed depth83- ``layer-enforcer``: static-analysis gate that checks namespaces match layer rules84- ``architecture-compliance-checker``: diffs the implemented layer graph against the documented one8586## Exit Criteria8788- [ ] An ADR captures the chosen layer stack (3-layer, 4-layer, or 5-layer), responsibilities89 per layer, allowed dependency direction, and the policy for cross-layer exceptions.90- [ ] A formal dependency diagram is committed to project documentation and matches the ADR's91 stated layer boundaries.92- [ ] Automated architectural checks (ArchUnit, dep-cruise, or equivalent) are wired into CI93 and fail the build on any upward dependency.94- [ ] Cross-cutting concerns (logging, auth, validation) are implemented once as middleware or95 policy and are not duplicated across layer implementations.