Workday-posted 4 days ago
$128,800 - $193,200/Yr
Mid Level
Beaverton, OR
Professional, Scientific, and Technical Services
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The Workday ML Runtime team is seeking an energetic and determined Software Engineer to design, implement, and deliver highly scalable features for our Machine Learning Runtime platform. As a member of this fast paced group you will have a unique and rewarding opportunity to shape and contribute towards microservices that power Workday Machine Learning features in production. You will partner with Data Scientists, ML Engineers, and other Software Engineers to create the technology that brings these features to life. This role will support one or more direct or indirect contracts with the U.S. Federal Government which, due to federal government security requirements, mandates that all Workday personnel working on the contracts be United States citizens (naturalized or native).

  • Developing frameworks, automation, and tooling to foster a culture of efficiency and innovation.
  • Apply technologies like Kubernetes, Docker, and Python to enhance developer scalability in creating innovative ML Runtime Inference applications.
  • Implementation and operation of distributed systems and software development including the conception, specifying, designing, programming, documenting, testing, and bug fixing involved in creating and maintaining applications, frameworks, or other software components.
  • Developing products and services that empower developers to streamline their interactions with the ML platform.
  • Working with public clouds (such as IAAS, AWS, GCP) and applying capacity management principles.
  • Deploying and orchestrating containers in production environments, including technologies like Containers, Kubernetes, Service Mesh, ArgoCD and related tools.
  • Actively engage with Tech Leads and ML Engineers across teams to elaborate on requirements and drive technical solutions.
  • Own and develop features from end to end including infrastructure as code.
  • Research, evaluate, prototype and drive adoption of new ML tools with reliability and scale in mind.
  • Strong dedication to proactively addressing and resolving issues, automating processes, and empowering engineers to self-service their operational needs for improved productivity.
  • Availability for on-call support on a rotational basis.
  • US Citizenship is required.
  • 3 or more years of DevOps experience including Infrastructure automation, building CICD pipelines.
  • Good in System design and writing comprehensive technical design docs.
  • Proficient in Python programming.
  • Design, implement, and maintain robust DevOps pipelines for deploying, monitoring, and scaling machine learning runtime environment.
  • Experience using technologies like Kubernetes/Docker to help developers scale their efforts in creating new and innovative products.
  • Collaborate with other Machine Learning teams to improve not just the product, but efficiencies in engineering processes.
  • Machine learning background.
  • Experience with communication protocols, RESTful services, service-oriented architecture, distributed systems, and microservices.
  • Building comprehensive monitoring services.
  • Prior experience with enterprise SaaS products.
  • Experience with monitoring tools like Grafana.
  • Passion for creating and maintaining documentation and fixing run books.
  • Proficiency in infrastructure automation tools like Terraform, implementing CI/CD pipelines using Git and Jenkins, and applying continuous deployment tool such as ArgoCD.
  • BS/MS in Computer Science or a related technical field.
  • Excellent problem-solving skills with a focus on creating and maintaining accurate documentation.
  • Experience in leading or mentoring other team members and proven team collaboration experience.
  • Workday Bonus Plan or a role-specific commission/bonus.
  • Annual refresh stock grants.
  • Flexible work schedule with at least 50% of time spent in the office or field.
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