AI Infrastructure Architect

Accenture Infrastructure and Capital Projects, LLC

Dublin

On-site

EUR 120,000 - 180,000

Full time

8 days ago
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Job summary

Accenture is seeking a hands-on Infrastructure Architect to design and optimize AI and machine learning infrastructure powering real-world applications. You will write code and IaC, provision cloud and on‑prem resources including GPUs, and deploy AI systems into production.

You will lead container orchestration with Docker and Kubernetes, and mentor junior engineers. As part of a collaborative team, you’ll balance performance, cost, and scalability while ensuring security and regulatory

Qualifications

  • Practical experience in coding, building, monitoring, troubleshooting AI/ML models and deploying them on premise or public cloud.
  • Strong understanding of AI/ML concepts and computing infrastructure.
  • Proficiency in Python, Java, or C++.
  • Experience with data pipelines and workflow tools (Airflow, Kubeflow).
  • Excellent problem-solving and collaboration skills.
  • Proven experience in AI/ML infra engineering on hyperscale platforms.

Responsibilities

  • Write, review, and debug code, scripts, and IaC for AI infrastructure and tooling.
  • Provision compute resources across cloud and on‑prem environments, including GPU clusters.
  • Design and maintain CI/CD pipelines for AI systems and deployments.
  • Deploy AI systems and data pipelines into production, evolve processes and best practices.
  • Lead container orchestration and model serving using Docker, Kubernetes, and deployment frameworks.
  • Architect and optimize compute stacks for performance, power, cost, and scalability.
  • Evaluate tools and platforms to shape the infra roadmap.
  • Ensure interoperability, security, and regulatory compliance with existing systems.
  • Own AI monitoring and infra health across InfraOps and MLOps, drive remediation.

Skills

AI/ML infrastructure
Problem solving
Fast-paced work
Programming languages

Education

Bachelor's degree in CS/CE

Tools

Python
Java
C++
Docker
Kubernetes
Apache Airflow
Kubeflow

Job description

YOU ARE

As a hands-on InfrastructureArchitect, you are an experienced engineer with several years in infrastructure engineering who now takes on more complex, higher-impact work designing andoptimizingthe AI and machine learning infrastructure that powers real-world applications. Working alongside senior architects and engineers — and increasingly leading your own workstreams — you apply proven skills in coding, testing, configuring, deploying,monitoring, and troubleshooting AI systems and the infrastructure they run on. Day to day, you architect and optimize infrastructure components, write and review code and deployment scripts, design and tune cloud and on-premises compute resources such as GPU clusters and distributed training environments, deploy AI systems and models into production, and build and optimize data pipelines that feed AI and ML workflows. Youoptimizethe computational stack for performance, cost, power, and scalability,monitorAI systems and infrastructure health across bothInfraOpsandMLOpsdisciplines, perform AI monitoring to track model and system performance, and independently troubleshoot and resolve complex issues across the stack. You also mentor junior engineers, contribute to architectural decisions, and helpestablishbest practices. This is a hands-on, ownership-driven role where you apply and deepen your expertise across modern tools and platforms — including container orchestration, model serving, CI/CD pipelines,InfraOps,MLOps, and AI monitoring — while making meaningful contributions to infrastructure that enables AI-driven business outcomes.

THE WORK
  • Write, review, and debug code, scripts, and infrastructure-as-code for AI infrastructure, automation, and tooling, setting standards for quality across the team.

  • Architect, configure, and provision compute resources across cloud and on-premises environments, including GPU clusters and distributed training setups,optimizing forperformance andutilization.

  • Design andmaintaindeployment automation and CI/CD pipelines to support reliable, repeatable releases of AI systems, models, and applications.

  • Deploy AI systems, models, and data pipelines into production, defining and improving the processes and best practices others follow.

  • Lead container orchestration and model serving using tools such as Docker, Kubernetes, and model deployment frameworks.

  • Architect andoptimizethe computational stack for performance, power, cost, and scalability, balancing trade-offs against business goals.

  • Evaluate and select tools, frameworks, and platforms, making recommendations that shape the infrastructure roadmap.

  • Integrate AI models and systems into existing enterprise systems, ensuring interoperability, security, and regulatory compliance.

  • Own AI monitoring and infrastructure health acrossInfraOpsandMLOps, tracking performance, reliability, andutilization, and driving remediation.

  • Independently troubleshoot and resolve complex issues across the computational stack — hardware, networking, software, and models — and lead root‑cause analysis.

  • Mentor junior engineers and lead code reviews, providing technical direction and supporting their growth.

  • Define and document architecture standards, processes, and procedures, and apply security, cost-efficiency, andscalabilitybest practices across the infrastructure.

EDUCATION
  • Bachelor’s Degree in ComputerScience, ComputerEngineering, related Engineering field
BASIC (REQUIRED) QUALIFICATION
  • Practical experience in coding, building, monitoring,troubleshooting applications of AI/ML models; selecting, designing and infrastructure for deploying and running them on premise or on public cloud.

  • Strong understanding of AI and machine learning as a subject.

  • Strong understanding of computing infrastructure as subject, preferred knowledge of AI infrastructure.

  • Proficiencyin programming languages such as Python, Java, or C++.

  • Experience with data pipeline and workflow management tools (e.g., Apache Airflow, Kubeflow).

  • Strong problem-solving skills and ability to work in a fast‑paced environment.

  • Excellent communication and collaboration skills.

  • Proven experience in AI/ML infrastructure engineering or related roles on ahyperscalerplatform for deploying large scale solutions.

About Accenture

Accenture is a leading global professional services company that helps the world’s leading businesses, governments and other organizations build their digital core, optimize their operations, accelerate revenue growth and enhance citizen services—creating tangible value at speed and scale. We are a talent- and innovation-led company with approximately 791,000 people serving clients in more than 120 countries. Technology is at the core of change today, and we are one of the world’s leaders in helping drive that change, with strong ecosystem relationships. We combine our strength in technology and leadership in cloud, data and AI with unmatched industry experience, functional expertise and global delivery capability. Our broad range of services, solutions and assets across Strategy & Consulting, Technology, Operations, Industry X and Song, together with our culture of shared success and commitment to creating 360° value, enable us to help our clients reinvent and build trusted, lasting relationships. We measure our success by the 360° value we create for our clients, each other, our shareholders, partners and communities.

Visit us at www.accenture.com

Equal Employment Opportunity Statement

We believe that no one should be discriminated against because of their differences.All employment decisions shall be made without regard to age, race, creed, color, religion, sex, national origin, ancestry, disability status, sexual orientation, gender identity or expression, marital status, citizenship status or any other basis as protected by applicable law.Our rich diversity makes us more innovative, more competitive, and more creative, which helps us better serve our clients and our communities

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