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Ravenna
Seattle, Washington, United States
Source: Ravenna careers · View original posting
From Ravenna's posting. “We” and “our” refer to the employer.
At Ravenna, we are looking for experienced engineers with a passion for AI and a strong track record of building and shipping production systems. Our team is combining the latest advances in large language models with proven machine learning techniques to build modern, intelligent product experiences.
This role requires strong engineering fundamentals and a deep curiosity about how AI systems work in practice. You will design, build, and operate LLM powered systems that are reliable, scalable, and deeply integrated into real product workflows.
You will work across the stack. This includes designing AI systems, building backend infrastructure, implementing product features, and iterating quickly based on evaluation and real user feedback. We care deeply about strong engineering practices and expect our AI engineers to think carefully about system design, observability, performance, and reliability.
If you are excited about applying cutting edge AI to disrupt large and established markets, we want to talk to you.
Strong engineering fundamentals
You are a strong software engineer first. You have at least five years of experience building production systems and are comfortable designing complex systems that are reliable, maintainable, and scalable.
You think carefully about architecture, testing, observability, performance, and operational reliability.
LLM systems experience
You have built systems around large language models in production environments. You understand that successful AI products require thoughtful system design, not just calling an API.
You have experience designing prompts, managing context, orchestrating tool usage, and improving the reliability of model outputs.
Evaluation mindset
You care deeply about measuring quality. You have experience building evaluation frameworks, designing datasets, and using experiments to guide improvements to prompts, models, and system architecture.
Retrieval and embedding systems
You have experience with retrieval augmented generation systems and understand how retrieval quality affects model performance.
You are comfortable working with embeddings, vector databases, and semantic search, and you understand how these approaches differ from traditional search and indexing systems.
LLM fundamentals
You understand how modern language models work at a conceptual level and can speak about transformers, attention mechanisms, and the tradeoffs between different model architectures.
AI system intuition
You understand the strengths and weaknesses of LLMs in practice. You think about hallucinations, prompt sensitivity, context limits, latency, and cost when designing systems.
Experimentation and iteration
You are comfortable running experiments across prompts, models, and system designs. You use evaluation data and real world feedback to guide improvements.
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