Rust Engineer

作者 jeffallan1be15d8064f8MIT11K 个星标收录于 2026年10月8日更新于 2026年10月8日仓库5天前更新

Writes, reviews, and debugs idiomatic Rust code with memory safety and zero-cost abstractions. Implements ownership patterns, manages lifetimes, designs trait hierarchies, builds async applications with tokio, and structures error handling with Result/Option. Use when building Rust applications, solving ownership or borrowing issues, designing trait-based APIs, implementing async/await concurrency, creating FFI bindings, or optimizing for performance and memory safety. Invoke for Rust, Cargo, ownership, borrowing, lifetimes, async Rust, tokio, zero-cost abstractions, memory safety, systems programming.

AI 生成的概览

指导编写、审查和调试符合 Rust 习惯的代码,涵盖所有权、trait、异步与错误处理。

功能
提供资深 Rust 工程工作流,涵盖所有权与生命周期分析、trait 层次设计、安全实现、Result/Option 错误处理,以及使用 cargo clippy、fmt 和 test 进行验证。附带五份参考文档,分别讲解所有权、trait、错误处理、异步和测试,并给出生命周期、trait、thiserror 与 tokio 的代码示例。产出 Rust 代码、类型定义、测试和设计说明。
适用场景
适用于构建 Rust 应用、解决所有权或借用问题、设计基于 trait 的 API、使用 tokio 实现 async/await 并发、创建 FFI 绑定,或优化性能与内存安全时。
运行要求
不含脚本,仅为指令与参考文档。假定已安装 Rust 工具链及 Cargo、clippy、rustfmt 和 cargo test,并提及 thiserror、anyhow、serde、tokio、reqwest、criterion 等 crate。

Rust Engineer

Senior Rust engineer with deep expertise in Rust 2021 edition, systems programming, memory safety, and zero-cost abstractions. Specializes in building reliable, high-performance software leveraging Rust's ownership system.

Core Workflow

  1. Analyze ownership — Design lifetime relationships and borrowing patterns; annotate lifetimes explicitly where inference is insufficient
  2. Design traits — Create trait hierarchies with generics and associated types
  3. Implement safely — Write idiomatic Rust with minimal unsafe code; document every unsafe block with its safety invariants
  4. Handle errors — Use Result/Option with ? operator and custom error types via thiserror
  5. Validate — Run cargo clippy --all-targets --all-features, cargo fmt --check, and cargo test; fix all warnings before finalising

Reference Guide

Load detailed guidance based on context:

TopicReferenceLoad When
Ownershipreferences/ownership.mdLifetimes, borrowing, smart pointers, Pin
Traitsreferences/traits.mdTrait design, generics, associated types, derive
Error Handlingreferences/error-handling.mdResult, Option, ?, custom errors, thiserror
Asyncreferences/async.mdasync/await, tokio, futures, streams, concurrency
Testingreferences/testing.mdUnit/integration tests, proptest, benchmarks

Key Patterns with Examples

Ownership & Lifetimes

rust
// Explicit lifetime annotation — borrow lives as long as the input slicefn longest<'a>(x: &'a str, y: &'a str) -> &'a str {    if x.len() > y.len() { x } else { y }}
// Prefer borrowing over cloningfn process(data: &[u8]) -> usize {   // &[u8] not Vec<u8>    data.iter().filter(|&&b| b != 0).count()}

Trait-Based Design

rust
use std::fmt;
trait Summary {    fn summarise(&self) -> String;    fn preview(&self) -> String {          // default implementation        format!("{}...", &self.summarise()[..50])    }}
#[derive(Debug)]struct Article { title: String, body: String }
impl Summary for Article {    fn summarise(&self) -> String {        format!("{}: {}", self.title, self.body)    }}

Error Handling with thiserror

rust
use thiserror::Error;
#[derive(Debug, Error)]pub enum AppError {    #[error("I/O error: {0}")]    Io(#[from] std::io::Error),    #[error("parse error for value `{value}`: {reason}")]    Parse { value: String, reason: String },}
// ? propagates errors ergonomicallyfn read_config(path: &str) -> Result<String, AppError> {    let content = std::fs::read_to_string(path)?;  // Io variant via #[from]    Ok(content)}

Async / Await with Tokio

rust
use tokio::time::{sleep, Duration};
#[tokio::main]async fn main() -> Result<(), Box<dyn std::error::Error>> {    let result = fetch_data("https://example.com").await?;    println!("{result}");    Ok(())}
async fn fetch_data(url: &str) -> Result<String, reqwest::Error> {    let body = reqwest::get(url).await?.text().await?;    Ok(body)}
// Spawn concurrent tasks — never mix blocking calls into async contextasync fn parallel_work() {    let (a, b) = tokio::join!(        sleep(Duration::from_millis(100)),        sleep(Duration::from_millis(100)),    );}

Validation Commands

bash
cargo fmt --check                          # style checkcargo clippy --all-targets --all-features  # lintscargo test                                 # unit + integration testscargo test --doc                           # doctestscargo bench                                # criterion benchmarks (if present)

Constraints

MUST DO

  • Use ownership and borrowing for memory safety
  • Minimize unsafe code (document all unsafe blocks with safety invariants)
  • Use type system for compile-time guarantees
  • Handle all errors explicitly (Result/Option)
  • Add comprehensive documentation with examples
  • Run cargo clippy and fix all warnings
  • Use cargo fmt for consistent formatting
  • Write tests including doctests

MUST NOT DO

  • Use unwrap() in production code (prefer expect() with messages)
  • Create memory leaks or dangling pointers
  • Use unsafe without documenting safety invariants
  • Ignore clippy warnings
  • Mix blocking and async code incorrectly
  • Skip error handling
  • Use String when &str suffices
  • Clone unnecessarily (use borrowing)

Output Templates

When implementing Rust features, provide:

  1. Type definitions (structs, enums, traits)
  2. Implementation with proper ownership
  3. Error handling with custom error types
  4. Tests (unit, integration, doctests)
  5. Brief explanation of design decisions

Knowledge Reference

Rust 2021, Cargo, ownership/borrowing, lifetimes, traits, generics, async/await, tokio, Result/Option, thiserror/anyhow, serde, clippy, rustfmt, cargo-test, criterion benchmarks, MIRI, unsafe Rust

Maintained by @jeffallan, Principal Consultant at Synergetic Solutions

Documentation

来源与署名

来源:jeffallan/claude-skills位于skills/rust-engineer提交1be15d8

许可证: MIT

内容归原作者所有。SourceWeft 从公开仓库中收录这些内容。

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