Deep Genomics is at the forefront of using artificial intelligence to transform drug discovery. Our cutting-edge AI platform decodes the complexity of RNA biology to identify novel drug targets mechanisms and therapeutics inaccessible through traditional methods. With expertise spanning machine learning bioinformatics data science engineering and drug development our multidisciplinary team in Toronto and Cambridge MA is revolutionizing how new medicines are created.
Where You Fit In
As a Senior DevOps Engineer you will play a key role in building scaling and optimizing the infrastructure and tooling that empowers our diverse scientific and engineering teams. You will enable seamless development of our sophisticated ML models software applications and data pipelines. Through close collaboration with teams across engineering machine learning and biology youll help push the boundaries of drug discovery through thoughtfully engineered systems.
Key Responsibilities
Manage infrastructure for software data and ML platforms both in the cloud and our on-premises GPU clusters.
Design and implement integrations between infrastructure components (containing internal and 3rd party systems) to ensure seamless flow of data in a robust reliable and secure manner.
Streamline and/or automate operational tasks such as infrastructure provisioning configuration management and application deployment.
Implement and manage robust monitoring logging and alerting for key infrastructure components.
Collaborate closely with engineering security and compliance teams to implement and promote DevSecOps principles across the organization.
Basic Qualifications
5 years of experience working as a DevOps/MLOps engineer SRE or infrastructure engineer.
Proficient in Infrastructure as Code tools (e.g. Terraform and Helm) in public cloud environments.
Deep expertise in containerization and orchestration technologies like Docker and Kubernetes.
Strong understanding of identity management and security best practices.
Extensive experience designing implementing and maintaining CI/CD pipelines (e.g. CircleCI).
Demonstrated experience with mentoring and elevating other team members skills to adhere to DevOps best practices.
Preferred Qualifications:
Experience with Python/Shell scripting and automation tools.
Hands-on experience with modern ML platforms and frameworks (e.g. Weights & Biases Metaflow MLflow Ray) and familiarity with the operational challenges of scaling ML workloads.
Experience designing and operating hybrid-cloud architectures that span on-premises and cloud environments with an emphasis on resilience observability and cost optimization.
Familiarity with secrets management zero-trust architectures and secure-by-default design patterns in regulated or privacy-sensitive environments.
What we offer
A collaborative and innovative environment at the frontier of computational biology machine learning and drug discovery.
Highly competitive compensation including meaningful stock ownership.
Comprehensive benefits - including health vision and dental coverage for employees and families employee and family assistance program.
Flexible work environment - including flexible hours extended long weekends holiday shutdown unlimited personal days.
Maternity and parental leave top-up coverage as well as new parent paid time off.
Focus on learning and growth for all employees - learning and development budget & lunch and learns.
Facilities located in the heart of Toronto - the epicenter of machine learning and AI research and development and in Kendall Square Cambridge Mass. - a global center of biotechnology and life sciences.
Deep Genomics welcomes and encourages applications from people with disabilities. Accommodations are available on request for candidates taking part in all aspects of the selection process.
Deep Genomics thanks all applicants however only those selected for an interview will be contacted.
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