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Evolutionary Modular Architecture

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Design robust platforms with evolutionary modular monoliths.

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What Evolutionary Modular Architecture does

The Evolutionary Modular Architecture skill provides a structured approach to designing and implementing platforms as evolutionary modular monoliths. It emphasizes strong logical boundaries from the outset, utilizing Domain-Driven Design (DDD) principles to define bounded contexts and organize modules effectively. This skill is particularly useful for developers and architects aiming to create scalable systems that can evolve over time without the need for extensive rewrites. By starting with a modular monolith, teams can maintain flexibility and adapt their architecture as the product and team grow.

This skill guides users through various phases of platform design, including domain discovery, context mapping, and module organization. It advocates for a flat-by-aggregate structure within modules, ensuring that business concepts are clearly delineated and easily navigable. The inclusion of an Anti-Corruption Layer allows for seamless integration with external systems, promoting vendor independence and reducing technical debt. Additionally, the skill addresses resilience in system design, incorporating strategies such as circuit breakers and idempotency to enhance the reliability of inter-module communications.

For teams looking to adopt modern technology stacks, the skill provides recommendations for a 2026 TypeScript stack, including tools like Nx, NestJS, and React. It also includes resources for creating polished architecture documentation, complete with elegant SVG diagrams, to facilitate communication among stakeholders. Overall, this skill is an essential resource for those involved in backend design and architecture, providing a comprehensive framework for building robust, maintainable systems.

When to use it

Use this skill when designing a new platform or backend, defining bounded contexts, or integrating with external services.

When not to use it

Avoid this skill for simple CRUD applications or when deep, NestJS-specific implementation details are needed.

What you can build with it

Designing a New Platform

Use this skill to establish strong logical boundaries and a modular structure when creating a new backend or service.

Defining Bounded Contexts

Leverage the skill to identify and classify subdomains, ensuring clear responsibilities and communication patterns.

Creating Architecture Documentation

Utilize the provided templates and resources to produce polished architecture documents that visually represent your system's structure.

How to install Evolutionary Modular Architecture

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1. Install with the skills CLI

npx skills add tech-leads-club/agent-skills/evolutionary-modular-architecture --agent claude-code

2. Or install it manually

Download the skill folder and drop it into ~/.claude/skills/ for all projects, or .claude/skills/ to scope it to one repo. Restart Claude Code so it picks up the new skill.

Anthropic's agentic coding CLI, and the reference implementation of Agent Skills. Drop a skill folder into ~/.claude/skills and Claude Code loads it automatically whenever a task matches the skill's description. Claude Code docs

Inside SKILL.md

Written by tech-leads-club

Evolutionary Modular Architecture

Design and build platforms as an evolutionary modular monolith: strong logical boundaries from day one (DDD bounded contexts, flat-by-aggregate modules, an Anti-Corruption Layer around every external system, event-driven communication, resilience by default) while keeping physical boundaries (separate deploys, separate databases) as a later, optional step. Start simple, evolve granularity only when the product and the team justify it — never reverse-engineer microservices from hype.

When to use this skill

  • Designing a new platform, backend, or service from scratch.
  • Defining bounded contexts and a context map for a domain.
  • Deciding how to organize a module's folders and files.
  • Choosing between monolith, modular monolith, and microservices.
  • Integrating with (or decoupling from) an external vendor: ERP, ticketing, storage, payment, AI, identity, durable-workflow engine.
  • Making external/inter-module calls resilient.
  • Adding real-time server-to-client updates.
  • Picking a modern (2026) full-stack TypeScript stack.

When NOT to use it

  • Simple CRUD with a handful of endpoints — framework defaults are enough.
  • Deep, NestJS-specific implementation detail — prefer nestjs-modular-monolith.
  • Reviewing or refactoring a single domain model for anemia — prefer tactical-ddd.

The one rule that governs everything

Separate the logical boundary (always strong) from the physical boundary (evolutionary). Modules, contracts, state ownership, and the Anti-Corruption Layer are non-negotiable from day one. Whether a module is its own deploy or its own database is an operational decision made later — never a structural prerequisite. This is what lets the system start as one deploy and grow without a rewrite.

A useful mental image: the house has well-divided rooms (modules). Inside each room things sit out in the open, grouped by what they are for (flat-by-aggregate) — not buried in nested drawers (technical-layer folders). The floor plan (boundaries) is what matters most.


Core model (load the matching reference when you go deep)

TopicWhat it coversReference
Principles10 modular (P1–P10) + 9 structural (P11–P19) + conflict hierarchyreferences/principles.md
DDDStrategic (subdomains, context map, integration patterns) + tactical (rich aggregates, intensity by subdomain)references/ddd.md
Module internalsFlat-by-aggregate, suffixes, depth, flat vs subdomain test, scaffoldingreferences/flat-by-aggregate.md
CommunicationPorts & Adapters / ACL, events + transactional outbox, SSE real-timereferences/acl-and-communication.md
ResilienceBackoff + full jitter, circuit breaker, retry budget, idempotency, bulkhead, timeoutsreferences/resilience.md
Stack 2026Frontend, backend, data, observability, durable workflow, decisionsreferences/stack-2026.md
Architecture docBuilding the elegant, self-contained HTML architecture document with SVG diagramsreferences/architecture-doc.md + assets/architecture-template.html
ValidationDeterministic checks for structure and module boundariesscripts/validate-structure.mjs, scripts/validate-boundaries.mjs

Do not load all references at once. Read a reference only when the current phase needs it (the workflow below states when).


Workflow

Use this whether you are designing a new system or reviewing an existing one. Move through phases in order; each has an exit criterion. State assumptions explicitly; if the domain is unclear, ask before guessing.

Phase 0 — Frame the scope

Confirm: is this a new platform, a new module in an existing one, or a review? Confirm the runtime/stack constraints (default target is the 2026 TypeScript stack — see references/stack-2026.md). Default to one deploy (modular monolith) unless a hard constraint says otherwise.

Exit: scope and constraints written down.

Phase 1 — Domain discovery (DDD strategic)

Read references/ddd.md. Identify subdomains from the business language, classify each as Core, Supporting, or Generic, and find the ubiquitous language of each. Do not group by technical layer. If multiple bounded-context interpretations exist, present them — do not pick silently.

Exit: a list of candidate bounded contexts, each classified, with one-line responsibility and key aggregates.

Phase 2 — Boundaries & context map

Draw the context map: which contexts exist, how they relate (Customer/Supplier, Conformist, Open Host Service, Published Language, Shared Kernel, Anti-Corruption Layer), and which are Core. Decide state ownership: one database is fine, but each module is the sole writer of its own tables — no foreign keys across module boundaries; reference other contexts by id. Keep aggregates cohesive (do not over-split a transactional Core).

Exit: context map + table-ownership map (one module = its tables).

Phase 3 — Module internals (flat-by-aggregate)

Read references/flat-by-aggregate.md. Inside each module, organize by aggregate, not by technical layer: 1 business concept = 1 folder; technical layers become file suffixes (.entity.ts, .service.ts, .controller.ts). Keep depth ≤ 2 (flat) or ≤ 3 (subdomain-based). The Clean Architecture dependency rule still holds (presentation → application → domain ← infrastructure) — it is just expressed by suffixes and co-location, not by layer folders. Use the 6-criteria test to decide flat vs subdomain-based; default to flat.

Exit: a folder layout per module and a flat-vs-subdomain decision with rationale.

Phase 4 — Communication & Anti-Corruption Layer

Read references/acl-and-communication.md. Every external system goes behind a Port + Adapter (ACL) — including internal services owned by other teams. The domain defines ports in its own language; adapters translate the external model in and out. Between internal modules: synchronous only inside an aggregate (one ACID transaction); events via the transactional outbox across modules, with idempotent consumers. Add SSE for server-to-client real-time when the UX needs push.

Exit: list of ports + adapters; list of domain events with the module.aggregate.action naming; sync-vs-async decisions.

Phase 5 — Resilience

Read references/resilience.md. Wrap every external/inter-service call: timeout → circuit breaker → retry (capped exponential backoff + full jitter). Only retry idempotent operations (require an idempotency key for writes). Cap retries with a budget (~10% of traffic), trip the breaker on a sliding-window error rate, and give every breaker a named fallback. Add durable execution only when a long-running, multi-step process must survive restarts.

Exit: a resilience policy applied to each adapter, plus idempotency keys for writes.

Phase 6 — Stack & evolution

Read references/stack-2026.md. Choose the concrete stack and call out the trade-offs (runtime, API style, cache, real-time transport). Then state the evolution path: stage 1 (modular monolith + clear boundaries, with events/outbox already in place) is the current state; promote a module to its own app/database only when its own metrics justify it.

Exit: stack table + evolution note.

Phase 7 — Document the architecture (HTML)

Produce a polished, self-contained HTML architecture document with elegant hand-drawn-style SVG diagrams. Read references/architecture-doc.md and start from assets/architecture-template.html: copy the template, keep its CSS and visual system intact, and replace the placeholder content. Build the standard sections (overview, domains, principles, monolith map, bounded contexts, ACL, communication, front-to-back, modules, resilience, real-time, evolution, stack) and number diagrams sequentially ("Diagram N — ..."). Preserve the visual identity: palette, Lato + JetBrains Mono fonts, rounded rectangles, arrow markers, soft gradients, and italic captions. The output is one HTML file that opens directly in a browser — no build step.

Exit: a single self-contained HTML file with consistent diagrams and working in-page navigation.


Decision rules (cheat sheet)

  • Subdomain class: competitive advantage → Core; business-specific but not differentiating → Supporting; solved problem you consume → Generic.
  • Tactical intensity: full (rich aggregates, VOs, invariants, events) in Core; moderate in Supporting; minimal in Generic (forcing richness where there is no invariant is over-engineering). Details in references/ddd.md.
  • Flat vs subdomain: flat by default (depth 2). Go subdomain-based (depth 3) only when 4+ of 6 criteria hold: different personas, authorization, execution model, scaling, deployment, failure isolation. Details in references/flat-by-aggregate.md.
  • Sync vs event: sync inside one aggregate (atomicity matters); event via outbox across modules (tolerates eventual consistency).
  • Durable execution: add it only for long-running, multi-step, must-resume processes — not for ordinary requests.

Hard rules (non-negotiable)

  • Each module writes only its own tables; cross-context links are by id, validated in code (enforce-module-boundaries).
  • No direct cross-module imports — communicate via facade/contract or event.
  • Every external system sits behind a port + ACL — no vendor model leaks into the domain.
  • Retry only idempotent operations; writes carry an idempotency key.
  • Modular principles (P1–P10) beat structural ones (P11–P19). If co-locating would force a cross-module entity import, use a facade + DTO; if splitting an aggregate would break a transaction, keep it together.

Automated checks

Make the principles executable instead of relying on review. Run these in CI and before merge (both are zero-dependency Node ESM scripts; pass the libs/packages root, or let them autodetect):

  • node scripts/validate-structure.mjs [root] — enforces flat-by-aggregate (P11–P17): no technical-layer folders, no single-file folders (except __test__/), depth ≤ 3, no README inside aggregates.
  • node scripts/validate-boundaries.mjs [root] — enforces modular boundaries (P1, P3, P8): no deep cross-module imports (only via barrel/facade), no duplicate or unprefixed entity names, no cross-context relations.

Both exit non-zero on violation and print the offending paths. Treat structural failures as blocking; treat boundary findings as blocking once the team adopts the convention.


Examples

Example 1: Design a new platform

User says: "Desenhe a arquitetura de uma plataforma de contas a pagar que lança no ERP do cliente." Actions:

  1. Phase 1 — discover subdomains; classify (e.g., Payables and Operations as Core; Documents/Audit/Gamification as Supporting; Identity/Notifications as Generic).
  2. Phase 2 — context map + one-database, table-per-module ownership.
  3. Phase 3 — flat-by-aggregate layout per module.
  4. Phase 4 — ERP/ticketing/storage behind ports + ACL; events via outbox; SSE for the operator queue.
  5. Phase 5 — resilience policy on the ERP adapter (idempotency key = payment id).
  6. Phase 6 — 2026 stack + evolution note (one deploy now). Result: a context map, module layouts, a port/adapter list, a resilience policy, and a stack + evolution plan — each grounded in the matching reference.

Example 2: Organize a module

User says: "Como organizo o módulo de billing?" Actions: read references/flat-by-aggregate.md; propose billing/subscription/, billing/invoice/, billing/payment/ with co-located files and __test__/; run the 6-criteria test (billing = flat). Result: a flat folder tree with rationale and the dependency rule preserved via suffixes.

Example 3: Decouple from a vendor

User says: "Não quero ficar preso ao OMIE." Actions: read references/acl-and-communication.md; define ErpLedgerPort in domain language; implement OmieAdapter; translate the OMIE model at the boundary; show that swapping ERPs means swapping the adapter. Result: a port interface + adapter plan; the domain never imports vendor types.


Anti-patterns / red flags

  • ❌ Microservices or many databases from day one ("it feels big" is not a reason).
  • ❌ Technical-layer folders (core/service/, http/controller/, persistence/entity/) inside a module — that is the legacy pattern flat-by-aggregate replaces.
  • ❌ A module reading or writing another module's tables.
  • ❌ Vendor SDK types leaking into the domain (no ACL).
  • ❌ Retrying non-idempotent writes; retries without backoff + jitter; retries with no budget.
  • ❌ Splitting a cohesive transactional Core into event-coupled fragments.
  • ❌ Forcing rich tactical DDD on a Generic subdomain that has no invariants.

Reference guide

Load this fileWhen
references/principles.mdYou need the exact principle text, or to resolve a structural-vs-modular conflict.
references/ddd.mdPhase 1–2: classifying subdomains, drawing the context map, deciding tactical intensity.
references/flat-by-aggregate.mdPhase 3: laying out a module; flat vs subdomain; scaffolding; facades; tests.
references/acl-and-communication.mdPhase 4: ports/adapters/ACL, events + outbox, SSE.
references/resilience.mdPhase 5: backoff/jitter, circuit breaker, idempotency, bulkhead, durable execution.
references/stack-2026.mdPhase 0/6: concrete stack choices and trade-offs.
references/architecture-doc.md + assets/architecture-template.htmlPhase 7: producing the HTML architecture document and its diagrams.
scripts/validate-structure.mjs, scripts/validate-boundaries.mjsValidation: enforcing structure and module boundaries in CI or before merge.

Frequently asked questions about Evolutionary Modular Architecture

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