Director, AI Platform Engineering & DevOps

IQVIA Argentina

Wayne (NJ)

On-site

USD 120,000 - 334,000

Full time

12 days ago
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Job summary

IQVIA seeks a Director, AI Platform Engineering & DevOps to lead strategy, architecture, engineering, and operational enablement of enterprise AI, Kubernetes, GPU, and DevOps platforms. You will partner with infrastructure engineering, data science, and business teams to design scalable, secure, cost-effective AI and cloud-native platforms.

The role supports enterprise adoption of Private AI, Generative AI, GPU-based computing, Kubernetes platform services, and RunAI capabilities, while

Qualifications

  • Extensive experience in enterprise infrastructure architecture, platform engineering, Kubernetes, DevOps, cloud-native technologies, AI/ML infrastructure.
  • Experience designing and supporting enterprise Kubernetes/container platforms, and experience with CI/CD, automation, and IaC practices.

Responsibilities

  • Define and drive architecture strategy for enterprise AI, Private AI, Generative AI, GPU, Kubernetes, and cloud-native platform services.
  • Lead design and evolution of scalable GPU infrastructure to support AI, ML, LLM, data science, and HPC workloads.
  • Provide Kubernetes platform leadership, including workload orchestration, containerized platform design, resource management, scalability, reliability, and governance.
  • Advance DevOps practices across platform services, including CI/CD enablement, automation, infrastructure as code, and operational efficiency.

Skills

Kubernetes
Platform engineering
DevOps
Cloud-native architecture
AI/ML infra

Education

Bachelor's Degree in Computer Science/Engineering

Tools

Terraform
Docker
GitHub Actions

Job description

The Director, AI Platform Engineering & DevOps will be responsible for leading the strategy, architecture, engineering, and operational enablement of enterprise AI, Kubernetes, GPU, and DevOps platforms. This role partners with infrastructure engineering, application development, data science teams, and business stakeholders to design scalable, secure, cost-effective, and operationally sustainable AI and cloud-native platforms.

The role supports enterprise adoption of Private AI, Generative AI, GPU-based computing, Kubernetes-based platform services, RunAI capabilities, automation, and DevOps practices. The position is accountable for helping business and technical teams evaluate AI use cases, onboard workloads, optimize infrastructure investments, and accelerate developer and data science productivity.

Essential Functions
  • Define and drive architecture strategy for enterprise AI, Private AI, Generative AI, GPU, Kubernetes, and cloud-native platform services.
  • Lead design and evolution of scalable GPU infrastructure to support AI, machine learning, LLM, data science, and high-performance compute workloads.
  • Provide Kubernetes platform leadership, including workload orchestration, containerized platform design, resource management, scalability, reliability, and operational governance.
  • Advance DevOps practices across platform services, including CI/CD enablement, automation, infrastructure as code, configuration management, deployment repeatability, and operational efficiency.
  • Partner with developers, data scientists, application architects, business architects, enterprise architecture, and business leaders to assess AI use cases and determine appropriate platform solutions.
  • Evaluate technology options, vendor capabilities, infrastructure designs, GPU configurations, networking, storage, and platform tooling to support enterprise AI objectives.
  • Drive adoption of AI platform services by conducting workshops, technical discovery sessions, onboarding activities, demos, and enablement sessions for development and data science teams.
  • Support platform users through onboarding, troubleshooting, technical guidance, requirements analysis, and operational support
  • Work with business and technical teams to ensure AI infrastructure solutions are not treated as simple checklist items, but are designed correctly for application, availability, migration, and business requirements.
  • Develop technical proposals, business cases, architecture recommendations, and cost optimization plans for AI and GPU platform investments.
  • Lead capacity planning and future-state roadmap development for AI platform growth, GPU expansion, workload onboarding, and Private AI adoption.
  • Collaborate with Enterprise Architecture teams to align AI and platform engineering capabilities with broader enterprise technology direction.
  • Identify opportunities to improve developer productivity, enable on-prem AI alternatives, reduce public cloud AI service costs, and support business-driven AI initiatives.
  • Mentor and guide junior or supporting resources to scale platform support, improve knowledge transfer, and reduce dependency on senior architecture resources.
  • Ensure platform solutions are implemented in alignment with Enterprise Standards, InfoSec expectations, operational processes, and infrastructure best practices.
Experience Required

Requires extensive experience in enterprise infrastructure architecture, platform engineering, Kubernetes, DevOps, cloud-native technologies, AI/ML infrastructure, or high-performance computing environments.

Experience should include several of the following:

  • Designing and supporting enterprise Kubernetes or container platforms.
  • Supporting DevOps, CI/CD, automation, and infrastructure as code practices.
  • Architecting GPU-based infrastructure for AI, machine learning, or high-performance compute workloads.
  • Working with AI/ML platforms, Generative AI, LLM hosting approaches, or Private AI solutions.
  • Partnering with developers, data scientists, architects, and business stakeholders to translate requirements into technical solutions.
  • Performing vendor evaluations, technical comparisons, platform recommendations, and cost-benefit analysis.
  • Leading complex cross-functional technology initiatives from concept through implementation and operational support.
Education Required
  • Bachelor’s Degree in Computer Science, Information Technology, Engineering, Data Science, or a related field preferred.
  • Equivalent combination of education, training, certifications, and relevant enterprise technology experience may be considered.
Additional Experience
  • Experience with RunAI or similar AI/GPU orchestration platforms preferred.
  • Experience with NVIDIA GPU platforms and AI infrastructure ecosystems preferred.
  • Experience with hybrid cloud, private cloud, virtualization, networking, storage, and enterprise compute platforms preferred.
  • Experience supporting AI adoption, developer enablement, workshops, platform onboarding, or technical evangelization preferred.
  • Experience preparing executive-level architecture recommendations, investment proposals, and technical roadmaps preferred.
Key Skills and Abilities
  • Very strong written and verbal communication skills, including the ability to prepare proposals, summaries, roadmaps, and executive-ready recommendations.
  • Strong knowledge of Kubernetes, container orchestration, platform engineering, and cloud-native architecture.
  • Strong knowledge of DevOps practices, CI/CD pipelines, GitOps, infrastructure as code, automation, and operational process improvement.
  • Strong understanding of GPU infrastructure, AI/ML workloads, LLM infrastructure requirements, and high-performance compute design.
  • Ability to evaluate complex technical options and recommend scalable, cost-effective, enterprise-ready solutions.
  • Ability to translate complex AI, infrastructure, and platform concepts into clear business and leadership recommendations.
  • Strong stakeholder management skills with the ability to influence across infrastructure, architecture, development, data science, and business teams.
  • Strong analytical and problem-solving skills with a focus on performance, scalability, resiliency, cost optimization, and operational readiness.
  • Ability to lead technical discovery sessions, workshops, demos, onboarding sessions, and enablement activities.
  • Ability to mentor technical resources and support knowledge transfer across teams.
  • Ability to work under limited direction and lead complex initiatives across multiple teams and priorities.

IQVIA is a leading global provider of clinical research services, commercial insights and healthcare intelligence to the life sciences and healthcare industries. We create intelligent connections to accelerate the development and commercialization of innovative medical treatments to help improve patient outcomes and population health worldwide. Learn more at https://jobs.iqvia.com

IQVIA is proud to be an equal opportunity employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, disability, status as a protected veteran, or any other status protected by applicable law. https://jobs.iqvia.com/eoe

IQVIA is committed to integrity in our hiring process and maintains a zero tolerance policy for candidate fraud. All information and credentials submitted in your application must be truthful and complete. Any false statements, misrepresentations, or material omissions during the recruitment process will result in immediate disqualification of your application, or termination of employment if discovered later, in accordance with applicable law. We appreciate your honesty and professionalism.

The potential base pay range for this role, when annualized, is $119,900.00 - $334,200.00. The actual base pay offered may vary based on a number of factors including job-related qualifications such as knowledge, skills, education, and experience; location; and/or schedule (full or part-time). Dependent on the position offered, incentive plans, bonuses, and/or other forms of compensation may be offered, in addition to a range of health and welfare and/or other benefits.

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