Job Description
Work Mode: Remote
Engagement Type: Independent Contractor
Schedule: Full-Time or Part-Time Contract
Language Requirement: Fluent English
Role Overview
We partner with leading AI teams to improve the quality, usefulness, and reliability of general-purpose conversational AI systems.
This project focuses specifically on evaluating and improving how AI systems reason about code, generate programming solutions, and explain technical concepts across various complexity levels.
The role involves rigorous technical evaluation of AI-generated responses in coding and software engineering contexts.
What Youll Do
Evaluate LLM-generated responsesto coding and software engineering queries for accuracy, reasoning, clarity, and completeness
Conduct fact-checkingusing trusted public sources and authoritative references
Conduct accuracy testing byexecuting code and validating outputs using appropriate tools
Annotate model responsesby identifying strengths, areas of improvement, and factual or conceptual inaccuracies
Assess code quality, readability, algorithmic soundness, and explanation quality
Ensuremodel responses align with expected conversational behaviorand system guidelines
Apply consistent evaluation standardsby following clear taxonomies, benchmarks, and detailed evaluation guidelines
Who You Are
You hold aBS, MS, or PhD in Computer Science or a closely related field
You havesignificant real-world experience in software engineeringor related technical roles
You are an expert in atleast one relevant programming language (e.g., Python, Java, C++, JavaScript, Go, Rust)
You are able to solveHackerRank or LeetCode Medium and Hardlevel problems independently
You have experience contributing to well-known open-source projects, including merged pull requests
You havesignificant experience using LLMs while codingand understand their strengths and failure modes
You have strong attention to detailand arecomfortable evaluating complex technical reasoning, identifying subtle bugs or logical flaws
Nice-to-Have Specialties
Prior experience with RLHF, model evaluation, or data annotation work
Track record in competitive programming
Experience reviewing code in production environments
Familiarity with multiple programming paradigms or ecosystems
Experience explaining complex technical concepts to non-expert audiences
What Success Looks Like
You identify incorrect logic, inefficiencies, edge cases, or misleading explanations in model-generated code, technical concepts, and system design discussions
Your feedback improves the correctness, robustness, and clarity of AI coding outputs
You deliver reproducible evaluation artifacts that strengthen model performance
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