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AWS Cloud AI Engineer

Role overview

Qualifications

  • Bachelor’s degree in Computer Science, Engineering, or related discipline
  • At least 5 years of experience in IT Systems Engineering or equivalent combination of education and experience
  • Demonstrated familiarity with deploying and operationalizing AI-driven workloads
  • Master’s degree in Computer Science with a minimum of 5 years of dedicated expertise in engineering and operating enterprise-scale environments on AWS

Responsibilities

  • Engineer, implement, and manage secure, scalable AI/ML platforms within the AWS ecosystem
  • Serve as a Subject Matter Expert (SME) in optimizing AWS infrastructure using Infrastructure as Code (IaC)
  • Lead the end-to-end operationalization of modern AI and Generative AI workloads
  • Build and maintain reliable, cost-efficient platforms utilizing native AWS services and automated CI/CD pipelines

About the company

Boston Medical Center (BMC) logo

Boston Medical Center (BMC)

Hospitals & Health Care

Boston Medical Center (BMC) is a 511-bed, equity-led academic medical center and a proud member of the Boston Medical Center Health System. BMC delivers a model of healthcare where innovative and equitable care empowers all patients to thrive. As a premier academic medical center in Boston, a national leader in clinical care, and the largest essential hospital in New England, BMC’s world-class clinicians provide comprehensive care in more than 70 specialties and subspecialties. BMC understands that health equity is foundational to community wellbeing, and it requires transformative thinking, rewriting policies that have historically underserved communities, creating access to cutting-edge care for all, and co-creating programs with community partners that serve as national models for improving patient outcomes and experiences. We are invested in going above and beyond what is traditionally considered medicine to meet the needs of our communities and address disparities in clinical care and beyond. By pioneering cutting-edge research and advancing scientific discovery, we are fostering a culture of innovation where novel treatments and therapies are not only effective but also accessible. Boston Medical Center Health System is an integrated academic healthcare system that models a new kind of excellence in healthcare where clinical and operational innovation meets health equity and access. With more than 15,000 dedicated employees, BMC Health System is committed to advancing scientific discovery and access to care, partnering with our communities, and developing scalable approaches to restore and maintain health. Visit jobs.bmc.org for career opportunities.

Company details

Company typeLarge
IndustryHospitals & Health Care
Company size5001 - 10000

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Job description

POSITION SUMMARY:

The AWS Cloud AI Engineer 2 at Boston Medical Center (BMC) is responsible for the engineering, implementation, and operational management of secure, scalable AI/ML platforms on Amazon Web Services. This position serves as a Subject Matter Expert (SME) in optimizing the underlying AWS ecosystem, leveraging Infrastructure as Code (IaC) and advanced monitoring to ensure model endpoints and data planes remain highly available. Beyond core cloud engineering, the role focuses on the end-to-end operationalization of modern AI and Generative AI workloads. Responsibilities include architecting the infrastructure guardrails necessary for high-performance environments such as Amazon Bedrock, SageMaker, and Kendra while maintaining strict adherence to enterprise security and governance standards. The ideal candidate will bring strong expertise in AWS architecture, infrastructure automation, DevOps practices, and AI platform integration, along with excellent communication skills and the ability to build strong working relationships across technical and business teams.

Position: AWS Cloud AI Engineer

Department: ITS Network - Tech Support

Schedule: Full Time

ESSENTIAL RESPONSIBILITIES / DUTIES:

The AWS AI Engineer 2 at Boston Medical Center (BMC) is responsible for the following tasks:

  • Engineer, implement, and manage secure, scalable AI/ML platforms specifically within the AWS ecosystem.

  • Serve as a Subject Matter Expert (SME) in optimizing AWS infrastructure using Infrastructure as Code (IaC) to ensure high availability for model endpoints and data planes.

  • Lead the end-to-end operationalization of modern AI and Generative AI workloads, including LLM-powered applications, Retrieval-Augmented Generation (RAG), and Agentic AI frameworks.

  • Build and maintain reliable, cost-efficient platforms utilizing native AWS services and automated CI/CD pipelines to transition intelligent solutions from development to production.

  • Implement advanced monitoring solutions to oversee platform health, performance, and the stability of AI-driven workloads.

  • Act as a technical lead to advance the organization’s cloud maturity, ensuring all AWS-based AI solutions are robust, secure, and "AI-ready."

JOB REQUIREMENTS

REQUIRED EDUCATION AND EXPERIENCE:

  • Bachelor’s degree in Computer Science, Engineering, or related discipline with at least 5 years of experience in IT Systems Engineering or equivalent combination of education and experience.

  • Demonstrated familiarity with deploying and operationalizing AI-driven workloads, specifically utilizing services like Amazon SageMaker or Amazon Bedrock.

  • Healthcare domain knowledge and working in regulated environments is a plus (HIPAA, HITRUST, SOC2)

PREFERRED EDUCATION AND EXPERIENCE:

  • Master’s degree in Computer Science with  a minimum of 5 years of dedicated expertise in engineering and operating enterprise-scale environments exclusively on AWS.

  • 3 years of hands-on experience managing foundational AWS services (S3, EC2, RDS, VPC, KMS, SNS).

CERTIFICATIONS, LICENSES, REGISTRATIONS PREFERRED:

  • AWS Certifications: AWS certified Machine Learning Engineer or AWS certified Generative AI Developer

KNOWLEDGE, SKILLS & ABILITIES (KSAs):

  • Proven experience building and supporting Generative AI solutions, including the integration of Large Language Models (LLMs), foundation models, and the application of advanced prompt engineering techniques to optimize application workflows.

  • Familiarity with Retrieval-Augmented Generation (RAG) and Agentic AI frameworks, specifically orchestrating multi-step reasoning workflows and integrating LLMs with enterprise vector search capabilities.

  • Deep technical proficiency within the AWS AI/ML ecosystem, specifically leveraging Amazon Bedrock, SageMaker, Kendra, and specialized services such as Comprehend, Rekognition, or Lex.

  • Proficiency in Python-based machine learning frameworks such as Hugging Face, PyTorch, or TensorFlow to support the development and deployment of intelligent applications.

  • Demonstrated ability to collaborate with data scientists, developers, and platform teams to transition experimental AI/ML workloads into production-ready, enterprise-grade cloud environments.

  • Experience implementing Infrastructure as Code (IaC) using Terraform or CloudFormation to provision and manage high-performance environments tailored for AI and LLM-powered workloads.

  • Experience designing and managing CI/CD pipelines (e.g., GitHub Actions, AWS CodePipeline) focused on the continuous integration and delivery of AI models and automated agentic workflows.

  • Proficiency in building asynchronous, event-driven architectures for AI processing using AWS Lambda and modern integration patterns.

  • Experience leveraging Docker and Amazon EKS to orchestrate containerized AI microservices and scalable inference endpoints.

  • Knowledge of monitoring and observability tools, including Amazon CloudWatch and CloudTrail, to ensure the health and performance of AI model endpoints and data planes.

  • Ability to embed security, compliance, and governance controls directly into AI infrastructure automation and delivery pipelines.

  • Familiarity with enterprise cloud strategy, including multi-account architectures and the assessment of workloads for cloud migration or modernization initiatives.

  • Experience working within Agile environments, maintaining technical documentation and operational runbooks using tools such as Jira and Confluence.

  • Strong analytical and troubleshooting skills with a consistent focus on automation, reliability, and the continuous improvement of the AI ecosystem.

Compensation Range:

$89,500.00- $130,000.00

This range offers an estimate based on the minimum job qualifications. However, our approach to determining base pay is comprehensive, and a broad range of factors is considered when making an offer. This includes education, experience, skills, and certifications/licensures as they directly relate to position requirements; as well as business/organizational needs, internal equity, and market-competitiveness. In addition, BMCHS offers generous total compensation that includes, but is not limited to, benefits (medical, dental, vision, pharmacy), discretionary annual bonuses and merit increases, Flexible Spending Accounts, 403(b) savings matches, paid time off, career advancement opportunities, and resources to support employee and family well-being. 

NOTE: This range is based on Boston-area data, and is subject to modification based on geographic location.

Equal Opportunity Employer/Disabled/Veterans

According to the FTC, there has been a rise in employment offer scams. Our current job openings are listed on our website and applications are received only through our website. We do not ask or require downloads of any applications, or “apps” job offers are not extended over text messages or social media platforms. We do not ask individuals to purchase equipment for or prior to employment. 

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Marcus Rivera

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