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Staff Scientist, Algorithm Development at Stellaromics, Inc.
Stellaromics, Inc.
No longer available
Information Technology
Posted 1 days ago
Job Description
Spun out of Stanford and MIT, Stellar - is an innovative biotech startup founded in produceren year and located in Boston, MA. Our pioneering proprietary technology helps researchers and clinicians create comprehensive cellular maps enhancing our understanding of various diseases, with our flagship product STARmap and upcoming Pyxa suite of products. We have a passionate management team and committed investors who believe in our patented technology and overall mission to profoundly advance biomedical research and accelerate the discovery of life-saving treatments.
Overview
We are seeking a highly skilled Staff Scientist, Algorithm Development to join our Computational Biology team. The ideal candidate will design, develop, and optimize computational methods to enhance 3D spatial transcriptomics analysis. In this role, youLU will leverage advanced statistical modeling and AI-driven frameworks to improve data accuracy, scalability, and performance. Additionally, you will collaborate across teams to align technical solutions with research and product goals while effectively communicating complex insights. This position will ideally be based at our headquarters in Boston, however we will consider applicants in the San Diego market.
Key Responsibilities
Core Algorithm Development
Overview
We are seeking a highly skilled Staff Scientist, Algorithm Development to join our Computational Biology team. The ideal candidate will design, develop, and optimize computational methods to enhance 3D spatial transcriptomics analysis. In this role, youLU will leverage advanced statistical modeling and AI-driven frameworks to improve data accuracy, scalability, and performance. Additionally, you will collaborate across teams to align technical solutions with research and product goals while effectively communicating complex insights. This position will ideally be based at our headquarters in Boston, however we will consider applicants in the San Diego market.
Key Responsibilities
Core Algorithm Development
- Lead the design, development, and validation of computational methods such as 3D image registration, spot detection, segmentation, decoding, and signal denoising to improve the accuracy and efficiency of spatial transcriptomics analysis.
- Develop advanced image and signal processing algorithms for object detection, feature extraction, spectral analysis, and noise reduction in complex multi-dimensional biological imaging datasets.
Decoding & Data Integration- Develop and optimize robust decoding algorithms to m a accurately assign transcripts from multiplexed, multi-round imaging data.
- Design statistical models for error estimation, dropout detection, and confidence scoring to ensure decoding reliability.
- Explore methods such as sparse coding, matrix factorization, probabilistic inference, and embedding-based machine learning to handle noise, optical crowding, and systematic artifacts.
Advanced Methods & Innovation- Explore and apply cutting-edge computational approaches, including deep learning (CNNs, VAEs, transformers) and generative AI models (e.g., denoising diffusion models) to improve both decoding and image analysis performance.
- Prototype novel algorithms for segmentation, denoising, decoding, and multi-round signal integration in large-scale 3D datasets.
Optimization & Scalability (Nice to have)- Optimize image processing and decoding algorithms for parallel processing, GPU acceleration, and FPGA implementations to enable real-time analysis of large datasets.
- Support integration of algorithms into scalable, high-performance pipelines for both research and product deployment.
fascination - Collaborate across scientific, computational, and product teams to align technical solutions with product requirements and research goals.
- - communicate complex concepts in decoding, image analysis, and signal processing to diverse audiences, including customers.
- Provide domain expertise in spatial transcriptomics, single-cell analysis, image/signal processing, and statistical modeling to guide technical and strategic decisions.
Qualifications- Ph.D. in Electrical Engineering, Computational Biology, Bioinformatics, Computer Science, or related field with a strong emphasis on image and/or signal processing.
- 5+ years of relevant experience (industry or postdoctoral research) in image processing, digital signal processing, computer vision, statistical modeling, or machine learning.
- Demonstrated expertise in segmentation, registration, feature extraction, and signal processing techniques.
- Strong background in computer vision, statistical modeling, probabilistic methods, and unsupervised clustering, especially applied to imaging and signal data.
- Excellent command of Python and/or C++ for scientific computing with experience relevant - libraries (OpenCV, scikit-image, NumPy, etc.).
- Experience with deep learning frameworks (PyTorch, TensorFlow), high-performance computing, and large-scale data pipelines.
- Proficiency in GPU computing; experience optimizing algorithms for GPU/parallel architectures is a strong plus.
- Experience in product development or translational projects in computational biology, medical imaging, or biotech is highly valued.
- Strong communication and documentation skills, with ability to manage and present complex data effectively.
- Submission of a GitHub profile or portfolio of relevant projects is encouraged.
- Innovative Technology: Be part of a company at the cutting edge of spatial biology and genomics, revolutionizing the way researchers understand biology.
- Impactful Role: You will have a significant impact on the department and the future of the company.
- Collaborative Environment: Work with a talented, passionate team in a culture that values creativity, innovation, and teamwork. -
- Career Growth: As a high-growth company, we offer significant opportunities for professional development and_nf career advancement.
Compensation
An attractive compensation and benefits package based on market pay data will be commensurate with candidate skills, qualifications, and experience.
If you are interested in becoming part of a growing team energized by limitless possibilities, please submit your resume for consideration. To learn more about Stellaromics and our technology, please visit our website at .
Stellaromics is an Equal Opportunity Employer striving to build an inclusive and diverse workplace culture.
The pay range for this role is:
150,000 - 200,000 USD per year (Headquarters)
150,000 - 200,000 USD per year (West Coast Office)
- Ph.D. in Electrical Engineering, Computational Biology, Bioinformatics, Computer Science, or related field with a strong emphasis on image and/or signal processing.
- Optimize image processing and decoding algorithms for parallel processing, GPU acceleration, and FPGA implementations to enable real-time analysis of large datasets.
- Explore and apply cutting-edge computational approaches, including deep learning (CNNs, VAEs, transformers) and generative AI models (e.g., denoising diffusion models) to improve both decoding and image analysis performance.
- Develop and optimize robust decoding algorithms to m a accurately assign transcripts from multiplexed, multi-round imaging data.
Typical senior pay: $181k for Computer and Information Research Scientists nationally
National salary averages
Expected senior-level
$181k
Entry
Mid
Senior
Expected
$81k
Market range (10th-90th percentile)
$232k
Senior roles pay 76% more than entry—experience is well rewarded.
Balanced market
High demand and responsive wages. Negotiate confidently on all fronts.
Hiring leverage
Lean candidate
Wage leverage
Moderate
Mobility
Low mobility
Who this leverage applies to
Stronger for:
All experience levels, Credentialed candidates
Weaker for:
Self-taught practitioners
Where to negotiate
Base salary
Sign-on bonus
Title / level
Remote flexibility
Scope & responsibility
Start date / PTO
Likely Possible Unlikely
Watch out for
Limited mobility:
Few adjacent roles—switching employers is harder.
Does this path compound?
Job Growth →
⚡
High churn
Growth, flat pay
🚀
Compound
Growth + pay upside
⚠️
Plateau
Limited growth
⭐
Specialize
Experts earn more
Pay Upside →
Growth + pay upside
Both the field and your earnings can grow significantly.
+20%
10yr growth
Advanced degrees are common in this field.
Typical: Master's degree
Good time to build expertise—demand will chase supply.
Labor data: BLS 2024