Research Engineer, Data

Harnham

California (MO)

On-site

USD 100,000 - 130,000

Full time

14 days+

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Job summary

Harnham is partnered with an innovative AI research company in California, USA, seeking a candidate for a pivotal role that merges research and engineering. The focus is on owning data processes, designing datasets, and building pipelines that shape AI model capabilities.

The ideal applicant will have a strong machine learning background, experience with multimodal datasets, and proficiency in tools like PyTorch. This position is perfect for those eager to impact the future of AI.

Qualifications

  • 4+ years of experience in machine learning, ideally with a data‑centric focus.
  • Experience working with large multimodal datasets and generative models.
  • Strong intuition for how data quality and composition impact model behavior.

Responsibilities

  • Design multimodal, multitask datasets to unlock new model capabilities.
  • Run controlled experiments to understand how data impacts model performance.
  • Build and scale pipelines for synthetic data generation.

Skills

Machine learning
Data-centric focus
Multimodal datasets
Data quality intuition
Proficiency in PyTorch

Tools

JAX
Kubernetes
Ray

Job description

We’re partnered with a well‑funded AI research company focused on building next‑generation multimodal models for media and interactive experiences. Their work spans cutting‑edge generative systems and is increasingly moving toward real‑time, interactive environments, pushing beyond static outputs into dynamic, AI‑driven applications.

This is a high‑impact, research‑meets‑engineering role focused on the data that powers advanced AI systems. You’ll own how models learn, designing datasets, running experiments, and building data pipelines that directly shape model capabilities across a wide range of applications.

What You’ll Do
  • Design multimodal, multitask datasets to unlock new model capabilities
  • Run controlled experiments to understand how data impacts model performance
  • Build and scale pipelines for synthetic data generation, filtering, and quality control
  • Define evaluation frameworks and benchmarks to measure real‑world model improvement
  • Partner with cross‑functional teams to translate product goals into data strategies
Requirements
  • 4+ years of experience in machine learning, ideally with a data‑centric focus
  • Experience working with large multimodal datasets and generative models
  • Strong intuition for how data quality and composition impact model behavior
  • Experience across the full ML lifecycle, from data to training to evaluation
  • Proficiency with ML frameworks such as PyTorch or JAX
  • Experience with distributed systems or compute tools (e.g., Ray, Kubernetes)
  • Strong interest in advancing next‑generation AI systems
Nice to Have
  • Experience with synthetic data generation or data curation at scale
  • Background working on multimodal or video‑based models
  • Exposure to evaluation and benchmarking for generative systems

If you're interested in shaping the data that defines what AI models can learn and do, this is a unique opportunity to work at the forefront of multimodal AI.

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