Data Scientist - Materials Characterization, Analytical Sciences & AI Agents

EurofinsSunnyvale, CA
$115,000 - $180,000Onsite

About The Position

Eurofins EAG Laboratories is seeking a Data Scientist to advance data-driven analysis, intelligent automation, and AI-enabled decision support across materials characterization and analytical testing services. This role applies data science, statistics, machine learning, and AI agent development to complex, multi-modal laboratory data. The Data Scientist will design and deploy AI agents capable of automating data analysis workflows, orchestrating multi-step scientific reasoning, and accelerating insight generation. The role partners closely with scientists, engineers, and operational teams to enhance data quality, scalability, automation, and analytical capabilities in support of client-driven testing services.

Requirements

  • MS or PhD in Materials Science, Data Science, Engineering, Physics, Chemistry, Applied Mathematics, or related field.
  • Demonstrated experience applying data science, machine learning, or statistical methods in laboratory or engineering environments.
  • Proficiency in Python and scientific computing libraries (NumPy, Pandas, SciPy, scikit-learn).
  • Experience working with experimental, image, spectral, sensor, or time-series data.
  • Experience developing or integrating AI agents, automation frameworks, or LLM-based systems for data analysis or workflow automation (e.g., LangChain, semantic orchestration frameworks, or agent-based architectures).
  • Strong written and verbal communication skills.

Nice To Haves

  • Experience applying deep learning or representation learning to scientific datasets.
  • Familiarity with multi-modal data modeling (image, spectral, time-series).
  • Hands-on experience designing AI agents for scientific workflows, including autonomous analysis, decision logic, and tool chaining.
  • Exposure to modern neural architectures (CNNs, RNNs, transformers).
  • Knowledge of signal processing or feature extraction techniques.
  • Experience with agent lifecycle practices, including evaluation, monitoring, versioning, and governance of AI systems.
  • Familiarity with ML frameworks such as PyTorch or TensorFlow.
  • Understanding of AI agent architectures, including prompt engineering, tool integration, retrieval-augmented generation (RAG), and multi-agent workflows.
  • Experience with data visualization and scientific reporting.
  • Ability to work collaboratively in a client-focused analytical services environment.

Responsibilities

  • Apply data science, machine learning, and AI methods to analyze and interpret materials characterization data across microscopy, spectroscopy, diffraction, and related techniques.
  • Design, build, and deploy AI agents that automate data analysis tasks, including data ingestion, preprocessing, feature extraction, model selection, and report generation.
  • Develop and maintain scalable data workflows, pipelines, and agent-based systems that improve efficiency, reproducibility, and throughput of laboratory data processing.
  • Implement agent-driven orchestration of multi-step analytical workflows, enabling autonomous or semi-autonomous execution of scientific data analysis.
  • Perform statistical analysis, feature engineering, and exploratory data analysis to identify trends, anomalies, and correlations in experimental datasets.
  • Build, validate, and document predictive and classification models for materials characterization, failure analysis, and process optimization.
  • Collaborate with scientists and engineers to translate experimental challenges into AI-augmented and agent-enabled solutions.
  • Support automation and standardization of data collection, processing, and reporting using both traditional pipelines and intelligent agents.
  • Communicate analytical insights and AI-driven results clearly to technical and non-technical stakeholders.
  • Contribute to continuous improvement of data infrastructure, AI capabilities, and advanced analytics platforms.

Benefits

  • 401k Company Matching
  • Wellness Program
  • Volunteer Time off
  • Education Assistance
  • Fitness Reimbursement
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