An AI Engineer at Normal Computing building production systems that understand large technical documents, like chip design specifications, and turn them into code, shipping improvements to customers weekly.
Responsibilities
- ▹Lead AI development from initial concept through production deployment and iteration
- ▹Design and implement LLM-powered solutions that extract meaning from complex technical specifications
- ▹Handle multi-modal complexity and explore multi-agent and RL approaches for agentic code generation and tool use
- ▹Design strategies to manage latency, output variance, and graceful error handling at scale
- ▹Collaborate with product and engineering teams to embed AI capabilities seamlessly into the platform
- ▹Guide junior engineers and establish best practices for AI development
Requirements
- ▹Previous experience delivering production AI systems involving language models, preferably document understanding and/or agentic workflows
- ▹Solid software engineering skills with experience in distributed systems and production-grade code
- ▹Proficiency in Python and modern ML frameworks (PyTorch, Hugging Face, transformers)
- ▹Hands-on experience with prompt engineering, fine-tuning, and deploying large language models
- ▹Ability to wrangle, clean, and preprocess large-scale, heterogeneous datasets
- ▹Ability to explain complex AI concepts to both technical and non-technical stakeholders
Nice to have
- ▹Experience deploying AI systems in mission-critical or high-stakes production environments
- ▹Experience with cloud platforms (AWS, GCP, Azure) for large-scale AI infrastructure
- ▹Research or applied experience with LLM agents, RL (offline/online, RLHF/RLAIF), constrained decoding, or program synthesis
- ▹Open-source contributions or publications in AI/ML venues
- ▹Skill in balancing cutting-edge innovation with production reliability and pragmatism
Soft skills
Explaining complex concepts to technical and non-technical audiencesMentoring junior engineers and establishing best practicesCross-functional collaboration with product and engineeringPragmatism balancing cutting-edge innovation with production reliability
About the company
Normal Computing builds silicon that turns thermal noise from an obstacle into a computational resource — stochastic, in-memory, asynchronous architectures that deliver 10-100x more AI inference per dollar and per watt. The company co-designs the full stack, from AI-native EDA systems used by the world's largest semiconductor companies to the advanced ASICs they make possible. Backed by $85M+ from leading deep-tech investors, the team works across New York, Silicon Valley, London, Copenhagen, and Seoul.
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