About the role
Schrödinger seeks a Machine Learning (ML) Platform Engineer to join us in our mission to improve human health and quality of life through the development, distribution, and application of advanced computational methods!
As a member of the Machine Learning team, you’ll build scalable software systems that enable scientists and engineers to train, deploy, and analyze machine learning models at scale. Our machine learning platform, LiveDesignML, supports applications ranging from molecular property prediction and generative chemistry to protein modeling.
Who will love this job:
- A highly-skilled software engineer who understands coding fundamentals, is experienced with Python, and has run projects end-to-end, from prototype to production
- An ML expert who’s familiar with PyTorch, TensorFlow, and scikit-learn
- An analytical thinker who enjoys working with multi-dimensional data, solving data-processing problems, and digging through complex systems to solve technical problems
- A polymath who’s excited about working collaboratively in an interdisciplinary environment and comfortable with self-directed research and problem exploration
What you’ll do:
- Design and develop infrastructure supporting machine learning training, inference, and experimentation workflows
- Build and maintain production systems that enable scientists to run large-scale ML workloads
- Collaborate with scientists, ML researchers, and engineers to translate research ideas into reliable software tools
- Contribute to backend services and APIs supporting ML workflows and platform features
- Improve developer workflows, testing infrastructure, and deployment automation
- Participate in code reviews and contribute to engineering best practices across the team
- Pitch in on frontend components of the ML platform web interface when needed
What you should have:
- BS, MS, or PhD in Computer Science, Machine Learning, Software Engineering, Mathematics, Physics, Chemistry, or a related field
Experience with the following is nice to have, but not required:
- Cloud platforms like AWS or GCP
- Containerization and orchestration (e.g., Docker, Kubernetes, Argo Workflows, Helm charts, etc.)
- CI/CD systems and modern software development workflows (e.g., Jenkins, GitHub Actions, etc.)
- Monitoring, logging, or observability systems
- Distributed computing or large-scale ML workloads
- ML training pipelines or experiment management
- Data processing pipelines or large-scale data analysis
- Source control systems (Git or similar)
- Web application development (e.g., React, TypeScript, REST APIs)
- Interest in scientific computing, chemistry, biology, physics, or related domains
Skills & Tags
Aplyr's read
Schrödinger leverages computational modeling to innovate in drug discovery and materials science, attracting scientists and tech experts passionate about cutting-edge research.
What's promising
- •Schrödinger is at the forefront of computational drug discovery, offering significant innovation potential.
- •The company provides a collaborative environment for scientists and technologists to solve complex problems.
- •Schrödinger's global presence allows for diverse career opportunities across various scientific and technical roles.
What to watch
- •High reliance on computational methods may limit applicability in some real-world scenarios.
- •The niche focus on modeling requires specialized skills, potentially narrowing job applicant pools.
- •Rapid technological changes in biotech could outpace Schrödinger's current capabilities.
Why Schrödinger
- •Schrödinger integrates advanced computational techniques with traditional scientific methods.
- •The company's dual focus on drug discovery and materials science is relatively rare in the industry.
- •Schrödinger's software solutions are pivotal in reducing time and cost in the R&D process.
Aplyr’s read is generated by AI from public sources. Was it useful?
About Schrödinger
Schrödinger is a technology company focused on advancing drug discovery and materials science through computational modeling and simulation.
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