Senior Software Engineer, AI Infrastructure - LVM Inference & Evaluation
Job in
Redwood City, San Mateo County, California, 94061, USA
Listed on 2026-08-02
Listing for:
Jobtailor
Full Time
position Listed on 2026-08-02
Job specializations:
-
Software Development
Machine Learning/ ML Engineer, AI Engineer (Applied/Software)
Job Description & How to Apply Below
- Design, build, and maintain cutting-edge AI infrastructure for real-time computer vision, LLM, LVM, and multimodal inference workloads.
- Build scalable systems for running state-of-the-art models across large volumes of video and sensor data.
- Optimize inference performance across latency, throughput, GPU utilization, reliability, and cost.
- Develop robust evaluation harnesses and benchmarking systems to measure model quality, system performance, regressions, and production readiness.
- Build infrastructure for continuous model evaluation, experimentation, and deployment.
- Partner with research scientists to product ionize the latest advances in computer vision, LLMs, LVMs, RAG, and multimodal AI.
- Improve model-serving architecture including batching, caching, routing, quantization, model parallelism, and hardware utilization.
- Develop data engines and feedback loops for collecting training data, evaluating model behavior, and continuously improving AI performance.
- Create reliable observability, monitoring, and debugging tools for production AI systems.
- Help define best practices for deploying, evaluating, and operating AI systems in real-world enterprise environments.
- 4+ years of industry experience building infrastructure, distributed systems, machine learning platforms, or production AI systems.
- BS/MS in Computer Science or a related technical field, or equivalent practical experience.
- Strong programming background, especially in Python, with solid software engineering fundamentals.
- Experience designing and building scalable machine learning infrastructure for training, inference, evaluation, and deployment.
- Hands-on experience running deep learning models in production, ideally including LLMs, LVMs, vision-language models, or multimodal models.
- Strong understanding of inference optimization techniques, including batching, caching, quantization, parallelism, memory optimization, GPU utilization, and latency reduction.
- Experience with model-serving frameworks such as vLLM, Triton Inference Server or similar technologies.
- Experience building evaluation frameworks, test harnesses, benchmarks, regression tests, or model-quality measurement systems.
- Strong background in machine learning and deep learning; computer vision experience is a strong plus.
- Experience designing data engines or pipelines for collecting, managing, and curating training and evaluation data.
- Familiarity with integrating advanced AI systems such as LLMs, LVMs, RAG pipelines, embedding models, or multimodal models into production applications.
- Experience with cloud infrastructure, containers, orchestration, distributed systems, and GPU-based workloads.
- Strong collaboration and communication skills.
- Proactive problem-solving ability, a strong ownership mindset.
Demonstrates expertise in building and optimizing AI infrastructure for real-time computer vision and multimodal inference workloads, with a strong focus on performance optimization and model evaluation. Proficient in deploying scalable machine learning systems and integrating advanced AI models into production environments.
Tools & Technologies- VLLM
- Triton Inference Server
- Cloud Infrastructure
- Containers
- Orchestration
Position Requirements
10+ Years
work experience
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