Data Scientist || 100% Remote (Background in bioinformatics required)

Remote, USA Full-time Posted 2026-05-31
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Job Description

Here’s What You’ll Do:

  • Support a wide variety of analytical, quality control, and manufacturing processes through advanced data analysis and visualization, statistical modeling, and Bayesian experimental design
  • Apply advanced techniques such as constrained optimization, machine learning, and Monte Carlo simulations to solve complex challenges including schedule optimization and batch generation
  • Identify high-impact opportunities by leveraging and applying the latest advances in computer science and operations research, continuously staying at the forefront of the field
  • Partner closely with cross-functional business and product stakeholders to iteratively align on project goals across the full lifecycle—spanning data acquisition, modeling strategy, validation, deployment, and monitoring
  • Collaborate deeply with data scientists, engineers, research scientists, statisticians, and manufacturing teams to drive integrated, scalable solutions
  • Champion and implement data science and software engineering best practices to ensure robustness, reproducibility, and scalability of solutions
  • Communicate complex analytical findings clearly and effectively to both technical and non-technical audiences, internally and externally
  • Explore and integrate emerging Generative AI capabilities to enhance modeling approaches, accelerate experimentation, and unlock new efficiencies across manufacturing and development workflows

Here’s What You’ll Need (Basic Qualifications)

  • Ph.D. in a quantitative STEM field (technology, engineering, and mathematics) with 0-2 years of professional experience, or a Master''s degree plus
  • 5-8 years of relevant professional experience required.
  • Experience with optimization (combinatorial, discrete, convex, etc.) preferred but not required.
  • Background in bioinformatics preferred but not required.
  • Experience delivering data science projects analyzing and modeling scientific engineering data, preferably in an industry setting.
  • Outstanding communication skills (verbal, written and remote).
  • Demonstrated experience in collecting, cleaning, and analyzing large and/or unstructured datasets and effectively communicating insights.
  • Fluency in Python, especially the data scientific stack (Jupyter/Pandas/scikit-learn) and machine learning libraries
  • Familiarity with best practices in software development, including Amazon Web Services, Docker, version control (Git), and documentation.
  • Working knowledge of relational databases (e.g., PostgreSQL).
  • Ability to manage multiple projects and effectively collaborate in a dynamic, cross-functional environment.
  • Proficiency in English (verbal and/or written) required due to global collaboration needs
    Key Responsibilities
  • Model Development: Design, train, and tune machine learning models (unsupervised/supervised) and statistical algorithms to detect anomalies.
  • System Monitoring: Implement real-time monitoring of data streams and system logs to identify deviations from expected behavior.
  • Data Analysis & Investigation: Analyze large, complex datasets to investigate root causes of flagged anomalies.
  • Alert Optimization: Reduce false positives by tuning detection thresholds, ensuring high-accuracy alerts.
  • Collaboration: Work with product management, data engineers and IT teams to implement data quality, security, and automated detection pipelines
  • Data Techniques: Strong understanding of statistical analysis, data mining, and feature engineering.

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