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Research Engineer - Model Evaluation & MLOps

sciforium · San Francisco

New
Mid 🇬🇧 English
Python PyTorch TensorFlow JAX vLLM SGLang TensorRT-LLM CI/CD experiment tracking model registry versioning

Job description

About the role

Sciforium is building next‑generation multimodal AI models and a high‑efficiency serving platform. As a Research Engineer focused on Model Evaluation & MLOps, you will create the tools and infrastructure needed to evaluate, deploy, and operate these models reliably on GPUs.

Key responsibilities

  • Rapidly integrate internal and open‑weight language and multimodal models into GPU evaluation and inference environments.
  • Build automated benchmarks for model quality and system performance, covering latency, throughput, and memory usage.
  • Create reproducible comparisons across Sciforium models, external baselines, and runtime configurations.
  • Develop and maintain experiment tracking, model registry, and versioning for models, datasets, and evaluation configurations.
  • Automate the path from research checkpoints to validated deployments using CI/CD and reproducible workflows.
  • Monitor model quality and system performance, diagnosing failures or regressions across pipelines.
  • Build reusable tools that enable researchers to launch evaluations, compare experiments, and reproduce results.
  • Profile end‑to‑end model workloads and collaborate with distributed systems, inference, and GPU kernel engineers on deeper performance issues.

Required profile

  • 2+ years of professional ML or software engineering experience on production ML systems or MLOps infrastructure.
  • Strong Python programming skills and experience building reliable production systems.
  • Hands‑on experience with PyTorch, TensorFlow, or JAX and modern language or multimodal model architectures.
  • Experience with model evaluation, benchmarking, experiment tracking, versioning, deployment, or monitoring.
  • Proficiency running, benchmarking, and debugging models on GPU inference runtimes (e.g., vLLM, SGLang, TensorRT‑LLM) in containerized cloud or on‑prem environments.
  • Clear documentation and collaboration skills across research, infrastructure, and product teams.
  • MS or PhD in Computer Science, Computer Engineering, Machine Learning, or equivalent practical experience.

Required skills

  • Python
  • PyTorch
  • TensorFlow
  • JAX
  • GPU inference runtimes (vLLM, SGLang, TensorRT‑LLM)
  • Containerization (Docker/Kubernetes)
  • CI/CD pipelines
  • Experiment tracking and model registry
  • Versioning and deployment workflows
  • GPU benchmarking and performance profiling

What we offer

  • Medical, dental, and vision insurance
  • 401k plan
  • Daily lunch, snacks, and beverages
  • Flexible time off
  • Competitive salary and equity
  • Equal‑opportunity employment

Questions fréquentes

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Source : ats:ashby

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Published 13 hours ago

Expires 1 month from now

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sciforium

San Francisco