Design, implement, and manage cloud-native infrastructure (AWS, Azure, GCP) to support healthcare platforms, AI agents, and clinical applications.
Build and maintain scalable CI/CD pipelines to enable rapid and reliable delivery of software,
data pipelines
, and AI/ML models.
Design and manage
Kubernetes (K8s) clusters
for container orchestration, workload scaling, and high availability with integrated monitoring to ensure cluster health and performance
Implement Kubernetes-native tools (Helm, Kustomize, ArgoCD) for deployment automation and environment management ensuring observability through monitoring dashboards and alerts
Collaborate with Staff Engineers/Architects to align infrastructure with enterprise goals for scalability, reliability, and performance leveraging monitoring insights to inform architectural decisions.
System Optimization & Reliability
Implement and maintain comprehensive monitoring, logging, and alerting mechanisms (Prometheus, Grafana, ELK, Datadog, AWS cloudwatch, AWS cloud trail) to ensure real-time visibility into system performance, resource utilization, and potential incidents.
Implement monitoring, logging, and alerting mechanisms (Prometheus, Grafana, ELK, Datadog) to ensure system reliability and proactive incident response.
Ensure
data pipeline workflows (ETL/ELT, real-time streaming, batch processing)
are observable, reliable, and auditable.
Support observability and monitoring of
GenAI pipelines, embeddings, vector databases, and agentic AI workflows
.
Proactively analyze monitoring data to identify bottlenecks, predict failures, and drive continuous improvement in system reliability.
Compliance & Security
Support audit trails and compliance reporting through automated DevSecOps practices.
Implement security controls for
LLM-based applications, AI agents, and healthcare data pipelines
, including prompt injection prevention, API rate limiting, and data governance.
Collaboration & Agile Practices
Partner closely with software engineers, data engineers, AI/ML engineers, and product managers to deliver integrated, secure, and scalable solutions.
Contribute to agile development processes including sprint planning, stand-ups, and retrospectives.
Mentor junior engineers and share best practices in cloud-native infrastructure, CI/CD, Kubernetes, and automation.
Innovation & Technical Expertise
Stay informed about emerging DevOps practices, cloud-native architectures,
MLOps/LLMOps
, and data engineering tools.
Prototype and evaluate new frameworks and tools to enhance infrastructure for
data pipelines, GenAI, and Agentic AI applications
.
Advocate for best practices in infrastructure design, focusing on modularity, maintainability, and scalability.
Requirements
Education & Experience
Bachelor's or Master's degree in Computer Science, Engineering, or related technical discipline.
6+ years of experience in DevOps, Site Reliability Engineering, or related roles, with at least 5+ years building cloud-native infrastructure.
Proven track record of managing
production-grade Kubernetes clusters
and cloud infrastructure in regulated environments.
Experience supporting
using ETL/ELT frameworks (Apache Airflow, dbt, Prefect) and
streaming systems
(Kafka, Spark, Flink).
Experience deploying
AI agents and orchestrating agent workflows
in production environments.
Technical Proficiency
Expertise in Kubernetes (K8s)
for orchestration, scaling, and managing containerized applications.
Strong proficiency in containerization (Docker) and Kubernetes ecosystem tools (Helm, ArgoCD, Istio/Linkerd for service mesh).
Hands-on experience with Infrastructure as Code (Terraform, CloudFormation, or Pulumi).
Proficiency with CI/CD tools (Jenkins, GitHub Actions, GitLab CI, ArgoCD, Spinnaker).
Familiarity with monitoring and observability tools (Prometheus, Grafana, ELK, Datadog, AWS cloud watch and AWS cloud trail), including setting up dashboards, alerts, and custom metrics for cloud-native and AI systems.
Good to have: knowledge of healthcare data standards (FHIR, HL7) and secure deployment practices for AI/ML and data pipelines.
Professional Skills
Strong problem-solving skills with a focus on reliability, scalability, and security.
Excellent collaboration and communication skills across cross-functional teams.
Proactive, detail-oriented, and committed to technical excellence in a fast-paced healthcare environment.
About Get Well:
Now part of the SAI Group family, Get Well is redefining digital patient engagement by putting patients in control of their personalized healthcare journeys, both inside and outside the hospital. Get Well is combining high-tech AI navigation with high-touch care experiences driving patient activation, loyalty, and outcomes while reducing the cost of care. For almost 25 years, Get Well has served more than 10 million patients per year across over 1,000 hospitals and clinical partner sites, working to use longitudinal data analytics to better serve patients and clinicians. AI innovator SAI Group led by Chairman Romesh Wadhwani is the lead growth investor in Get Well. Get Well's award-winning solutions were recognized again in 2024 by KLAS Research and AVIA Marketplace. Learn more at Get Well and follow-us on LinkedIn and Twitter.
Get Well is proud to be an equal opportunity employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, gender, gender identity or expression, sexual orientation, national origin, genetics, disability, age or veteran status.
About SAI Group:
SAIGroup commits to $1 Billion capital, an advanced AI platform that currently processes 300M+ patients, and 4000+ global employee base to solve enterprise AI and high priority healthcare problems. SAIGroup - Growing companies with advanced AI; https://www.cnbc.com/2023/12/08/75-year-old-tech-mogul-betting-1-billion-of-his-fortune-on-ai-future.html
Bio of our Chairman Dr. Romesh Wadhwani: Team - SAIGroup (Informal at Romesh Wadhwani - Wikipedia)
* TIME Magazine recently recognized Chairman Romesh Wadhwani as one of the Top 100 AI leaders in the world - Romesh and Sunil Wadhwani: The 100 Most Influential People in AI 2023 | TIME
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