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Senior Engineer, Machine Learning

Open 57d posting dated last month

At Element Biosciences, we are passionate about our mission to empower the scientific community with more freedom and flexibility to accelerate our collective impact on humanity. We have built a highly efficient product-driven organization where employees can learn, grow, and thrive in a challenging but encouraging environment. We are committed to scientific integrity, collegiality, honesty, objectivity, and openness.

We are seeking a highly skilled and motivated Senior Engineer, Machine Learning to join our dynamic team. The ideal candidate will have experience in data science and machine learning, with a background in working with multiomic and single-cell data and/or image processing and computer vision. This role involves creating, exploring, and analyzing models, as well as applying advanced image processing techniques to drive our research and development efforts and contribute to critical programs. This role will report to Vice President, AI and will be an onsite role at our headquarters in San Diego.

If you possess the following and want to make a meaningful impact, we invite you to explore this role.

Essential Functions and Responsibilities:

  • Design, develop, and optimize deep learning models (CNNs, Vision Transformers, U-Net variants, and related architectures) for biological image analysis and classification
  • Deploy and maintain production-grade neural network models on cloud infrastructure (e.g., AWS) or directly on imaging instruments, ensuring reliability, scalability, and performance
  • Apply advanced image processing and computer vision techniques to analyze multimodal biological images, including segmentation, feature extraction, and quality scoring
  • Develop and manage end-to-end ML pipelines — from data ingestion and preprocessing through model training, validation, and inference
  • Analyze and interpret single-cell and multiomic data to support biological context and downstream interpretation of imaging results
  • Collaborate with cross-functional teams including biology, software engineering, and instrumentation to co-design experiments and translate biological requirements into modeling objectives
  • Explore and analyze large-scale imaging datasets to identify patterns, failure modes, and opportunities for model improvement
  • Communicate findings, model performance metrics, and technical trade-offs to stakeholders through reports and presentations
  • Stay current with the latest advances in deep learning, computer vision, and computational biology, and evaluate their applicability to internal research problems

Education and Experience:

  • Master's degree in Computer Science, Electrical Engineering, Bioinformatics, Computational Biology, or a related field with 5–7 years of relevant experience, or PhD with 0–3 years of experience
  • Hands-on experience developing and deploying deep learning models for image analysis in production environments — either cloud-hosted or on-instrument — is required
  • Strong proficiency with modern deep learning architectures including CNNs, Vision Transformers (ViT), U-Net, and attention-based models; familiarity with self-supervised or contrastive learning methods is a plus
  • Experience with biological or biomedical image modalities (e.g., fluorescence microscopy, brightfield, high-content imaging) is strongly preferred
  • Proficiency in Python and relevant deep learning and data science libraries: PyTorch, torchvision, OpenCV, Scikit-learn, NumPy, Pandas, and related tools
  • Experience with cloud computing platforms (e.g., AWS), including model serving, containerization (Docker), and GPU-accelerated compute
  • Familiarity with model calibration, uncertainty quantification, or performance evaluation frameworks is a plus
  • Experience with single-cell or multiomic data analysis tools and workflows is a plus (not required)
  • Knowledge of experimental design and statistical analysis
  • Strong background in statistics and comfort reasoning about model outputs quantitatively
  • Excellent problem-solving skills, attention to detail, and ability to work across scientific and engineering disciplines

Physical Requirements:

  • Frequently moves boxes weighing up to 20 pounds

Location:

  • San Diego – on-site

Travel:

  • Domestic travel up to 10%

Job Type:

  • Full-time/Exempt

Base Compensation Pay Range:

  • $139,000 - $183,000



In addition to base compensation noted above, you will be eligible for stock options, discretionary annual bonus, no cost health insurance plans, 401k with company match, and flexible paid time off.

Please note: Base compensation will depend on multiple factors, including geographic location, qualifications, and experience.

We foster an environment such that all people are afforded the freedom to pursue their passions without regard to race, color, religion, national or ethnic origin, gender (including pregnancy), sexual orientation, gender identity or expression, age, disability, veteran status or any other characteristics protected by law.

What this application asks

greenhouse

First Name, Last Name, Email, Phone, Resume/CV, Cover Letter

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  • Are you willing to relocate if needed? choose one
  • As of today’s date, are you legally authorized to work in the country in which the position is located? choose one
  • If you are a foreign national, will you now or in the future require sponsorship for employment visa status? choose one
  • If you answered, "yes" to the previous question, please provide additional context below. written answer
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  • Please provide your date of availability.
  • When you apply to a job on this site, the personal data contained in your application will be collected by Element Biosciences, Inc., (“Controller”), which is located at 10055 Barnes Canyon Road, Suite 100, San Diego, CA 92121. Controller’s team responsible for data privacy can be contacted at Privacy@elembio.com. Your personal data will be processed for the purposes of managing Controller’s recruitment related activities, which include setting up and conducting interviews and tests for applicants, evaluating and assessing the results thereto, and as is otherwise needed in the recruitment and hiring processes. Such processing is legally permissible under Art. 6(1)(f) of Regulation (EU) 2016/679 (General Data Protection Regulation) as necessary for the purposes of the legitimate interests pursued by the Controller, which are the solicitation, evaluation, and selection of applicants for employment. Your personal data will be shared with Greenhouse Software, Inc., a cloud services provider located in the United States of America and engaged by Controller to help manage its recruitment and hiring process on Controller’s behalf. Accordingly, if you are located outside of the United States, your personal data will be transferred to the United States once you submit it through this site. Because the European Union Commission has determined that United States data privacy laws do not ensure an adequate level of protection for personal data collected from EU data subjects, the transfer will be subject to appropriate additional safeguards. If you can have any questions, please contact us at privacy@elembio.com. Your personal data will be retained by Controller for one (1) year for the purpose of Controller evaluating your application for employment. Your consent will be requested prior to Controller retaining the data longer than one (1) year. Under the GDPR, you have the right to request access to your personal data, to request that your personal data be rectified or erased, and to request that processing of your personal data be restricted. You also have the right to data portability. In addition, you may lodge a complaint with an EU supervisory authority. choose one
  • I certify that the information I have provided to Element Biosciences on this application is correct to the best of my knowledge and I understand that any falsifications, misrepresentations, and/or omissions may result in my disqualification for consideration of employment or, if subsequently employed, my dismissal. choose one
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