Generative AI Engineer (GenAI Engineer)
Spotted 2d agocontract
Job description
About this role
Employer-provided description, formatted for easier reading.
Role: Generative AI Engineer (GenAI Engineer)
Location: USA PST time zone (Remote / Hybrid ).
Time zone to follow
PST
Job description :
- 2–3 years of software development experience, including candidates with strong academic, internship, personal, or open-source project experience.
- Strong programming fundamentals in Python, JavaScript/TypeScript, Node.js, or Golang.
- Basic hands-on experience with React, Next.js, REST APIs, Git, and GitHub.
- Hands-on familiarity with AI-assisted development tools such as Cursor, Claude Code, GitHub Copilot, ChatGPT, Windsurf, or Replit AI.
- Fundamental understanding of Generative AI, LLMs, Prompt Engineering, AI Agents, and RAG.
- Basic understanding of MCP (Model Context Protocol) and how AI agents can interact with tools, APIs, and external systems.
- Exposure to building AI/LLM-based applications, chatbots, workflows, or proof-of-concepts through academic, internship, personal, or open-source projects.
- Understanding of APIs, JSON, web services, and basic application architecture.
- Familiarity with Git-based development and software engineering practices.
- Strong analytical and problem-solving skills with the ability to learn new technologies quickly.
- Strong curiosity and enthusiasm for experimenting with emerging AI tools, frameworks, and developer productivity technologies.
Preferred / Good-to-Have Skills:
- Exposure to LangChain, LangGraph, CrewAI, AutoGen, or similar AI/agent frameworks.
- Familiarity with vector databases, embeddings, semantic search, and RAG implementations.
- Basic exposure to Docker, Kubernetes, AWS, Azure, or GCP.
- Experience integrating AI applications with enterprise systems, databases, or third-party APIs.
- Experience with MCP servers, tool calling, function calling, or agentic workflows.
- Personal projects, GitHub contributions, hackathons, or academic projects involving GenAI, LLMs, or AI agents.
- Ability to use AI coding tools to rapidly convert ideas into functional prototypes or demos.
- Strong product mindset and ability to understand a problem and translate it into a working technical solution.
- Comfortable working in a fast-paced environment involving rapid experimentation, ambiguity, and continuous learning.
- Ability to balance rapid development with code quality, security, maintainability, and engineering best practices.
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