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Derlys/README.md

Derlys Domínguez

AI-Driven Fullstack DeveloperBuilding AI-Integrated Web Applications

TypeScriptReactNext.jsNode.jsLLM IntegrationType-Safe APIs

Building the next generation of AI-integrated web applications.

I’m a fullstack developer focused on turning LLM capabilities into usable products, not demos. My work sits at the intersection of modern frontend engineering, type-safe backend architecture, and practical AI workflows such as structured outputs, streaming responses, and prompt-driven product features.

Core Four

ProjectFocusOne-line pitch
cangudevAI product workflowAn AI-powered technical English coach that transforms developer text into structured rewrites, grammar feedback, idioms, and interview-style challenges.
youcanchefAI + UXA Gemini-powered web app that evaluates ingredient availability by city to help digital nomads adapt recipes with local-market intelligence.
cangu-financeFullstack architectureA production-oriented TypeScript monorepo for mobile and web apps with typed APIs, auth, database workflows, and AI-ready backend services.
skillforgeAI-ready platform engineeringA full-stack TypeScript platform combining mobile, web, and streamed LLM interactions through a type-safe API architecture.

Technical Superpowers

AI & LLM Orchestration

  • Prompt engineering for structured outputs
  • Gemini and OpenAI-style API integrations
  • Streaming LLM responses
  • JSON-first AI workflows
  • AI-assisted product features
  • Response parsing, validation, and error handling

GeminiOpenAI PatternsPrompt EngineeringStructured OutputsStreaming UX

Frontend & UI

  • React
  • Next.js
  • TypeScript
  • Tailwind CSS
  • Responsive product interfaces
  • UX for AI-powered applications

ReactNext.jsTypeScriptTailwind CSS

Backend & Architecture

  • Node.js
  • Monorepos
  • Type-safe APIs
  • Hono and modern API backends
  • Auth and database integration
  • Scalable fullstack project structure

Node.jsMonoreposType-Safe APIsHonoArchitecture

Currently Building

I’m currently focused on building AI-native product experiences with:

  • Streaming LLM responses for faster, more natural interfaces
  • Structured AI data pipelines that return reliable JSON outputs
  • Type-safe fullstack systems where AI features integrate cleanly into production code
  • Practical developer tools and web apps that make LLM workflows useful in real products

What I Care About

  • Shipping AI features that solve real product problems
  • Keeping frontend experiences fast, clear, and production-ready
  • Designing backend systems that stay maintainable as complexity grows
  • Using LLMs as part of strong software architecture, not as a shortcut around it

Pinned Loading

  1. cmcmPublic

    TypeScript

  2. cangudevcangudevPublic

    My first app using AI tools

    TypeScript