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AI Engineer

Avathon · Pleasanton, California, United States · Posted May 26, 2026

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Who We Are Why Join Us

Avathon is the leading Industrial AI autonomy platform, helping customers across heavy industries -- energy, mining, manufacturing, aerospace, defense, and logistics -- accelerate the journey toward autonomous operations. Our platform is built on a Computational Knowledge Graph foundation that contextualizes and connects operational data across siloed systems, bringing together time series, structured, unstructured, and machine vision data to power AI-driven applications in asset performance management, supply chain intelligence, visual AI, and global trade management. With capabilities spanning digital twins, normal behavior modeling, natural language processing, and computer vision, Avathon delivers real-time predictive intelligence and agentic decision-making at industrial scale.

Cutting-Edge AI Innovation -- Join a team at the forefront of AI, developing groundbreaking solutions that shape the future. High-Growth Environment -- Thrive in a fast-scaling startup where agility, collaboration, and rapid professional growth are the norm. Meaningful Impact -- Work on AI-driven projects that drive real change across industries and improve lives.

Learn more at: avathon.com

About the Role

Senior AI Engineer – Generative AI LLMs

At Avathon, we are building cutting-edge AI solutions that transform operations across asset-intensive industries such as Supply Chain, Logistics, Energy, Mining, Aerospace, and Industrial Manufacturing. As an AI Engineer, you will play a critical role in designing, developing, and deploying scalable AI systems with a strong focus on Generative AI, Large Language Models (LLMs), and production-grade machine learning applications.

This role is ideal for someone with strong engineering depth who can bridge research and production—building robust AI platforms, optimizing LLM workflows, and delivering high-impact solutions across forecasting, route optimization, anomaly detection, predictive maintenance, and intelligent automation.

With 3–5 years of hands-on industry experience, you are expected to bring expertise in AI system design, ML engineering, LLM deployment, and scalable software development within fast-paced startup environments.

You Will

Design, build, and deploy production-grade AI/ML systems with strong emphasis on Generative AI and LLM-powered applications

Develop and optimize end-to-end LLM pipelines including RAG architectures, fine-tuning, prompt orchestration, evaluation, and observability

Build scalable backend services and APIs for AI applications using modern engineering best practices

Implement and productionize transformer-based models and GenAI workflows for enterprise use cases

Design vector search systems, embedding pipelines, and retrieval frameworks for knowledge-intensive applications

Partner closely with Product, Engineering, and Business teams to translate operational challenges into scalable AI solutions

Drive experimentation, benchmarking, model evaluation, and performance optimization with scientific rigor

Improve inference efficiency, latency optimization, cost management, and reliability of deployed AI systems

Establish guardrails, hallucination detection, monitoring, and responsible AI practices for production deployments

Contribute to MLOps workflows including CI/CD, model lifecycle management, observability, and cloud deployment

Stay current with the latest advancements in LLMs, agentic systems, foundation models, and applied AI engineering

You'll Have

Bachelor’s or Master’s degree in Computer Science, Artificial Intelligence, Machine Learning, Data Science, or a related technical field

3–5 years of hands-on industry experience in AI Engineering, Machine Learning Engineering, Applied AI, or related roles

Strong experience building and deploying LLM-based applications in production environments

Solid expertise with Python and modern AI/ML frameworks such as PyTorch, TensorFlow, Hugging Face, LangChain, LlamaIndex, or similar

Strong understanding of transformer architectures, LLM fine-tuning, prompt engineering, RAG systems, and vector databases

Experience building scalable APIs and backend systems supporting AI workflows

Familiarity with cloud platforms such as AWS, GCP, or Azure

Strong software engineering fundamentals including system design, debugging, performance optimization, and production reliability

Experience with containerization, deployment pipelines, and collaborative engineering environments

Strong analytical thinking, ownership mindset, and ability to work in ambiguous, fast-moving startup environments

Strong communication skills and ability to work cross-functionally with technical and business stakeholder

Preferred Qualifications

Exposure to Retrieval-Augmented Generation (RAG), vector databases, or embedding-based search systems

Familiarity with LLM observability and evaluation tools (e.g., Langfuse, LangSmith, Arize Phoenix, Weights Biases)

Hands-on experience with practical LLM d…

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