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efekurucay
Perfil de criador do GitHub

efekurucay

Visão por repositório de 4 skills coletadas em 1 repositórios do GitHub.

skills coletadas
4
repositórios
1
atualizado
2026-05-05
mapa de repositórios

Onde as skills estão

Principais repositórios por número de skills coletadas, com sua participação neste catálogo do criador e sua distribuição ocupacional.

explorador de repositórios

Repositórios e skills representativas

abstraction-cost-auditor
Desenvolvedores de software

Review code, refactors, helpers, services, repositories, APIs, modules, design patterns, and architecture decisions through the cost of abstraction. Use when asked whether code should be modularized, abstracted, extracted, simplified, inlined, generalized, refactored, or when reviewing overengineering, clean code, reusable code, contracts, layers, or architecture.

2026-05-05
cache-aware-performance-reviewer
Desenvolvedores de software

Review slow code, algorithms, data structures, database-heavy flows, loops, allocations, collections, serialization, and hot paths through hardware-aware performance thinking. Use when asked why something is slow, whether Big-O is enough, how to optimize, how to choose array vs map/tree/list, or how to reason about memory access, cache locality, allocations, async overhead, and real runtime behavior.

2026-05-05
llm-code-grounding-loop
Desenvolvedores de software

Ground AI-generated code, refactors, architectural suggestions, and implementation plans in real project constraints. Use when working with LLMs on coding tasks, asking an assistant to implement features, reviewing AI-generated code, preventing hallucinated architecture, translating vague requirements into code, or forcing the assistant to reason across requirement, API, runtime, data, and failure layers.

2026-05-05
three-level-learning-drill
Professores de ciência da computação, pós-secundário

Teach programming concepts by moving across three abstraction levels: high-level code or product behavior, runtime/intermediate representation, and low-level data/hardware effects. Use when asked to deeply understand code, frameworks, React, .NET, SQL, Vite, APIs, memory, performance, compiler/runtime behavior, or when the user says “anlamamı sağla”, “deep reasoning yap”, “neden böyle”, or “mantığını anlat”.

2026-05-05
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