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Lead ML Platform Engineer

NTT DATA
  • Charlotte, NC
  • Quick Apply
5 days ago

Job Description

Company Overview:
Req ID: 388174
NTT DATA strives to hire exceptional, innovative and passionate individuals who want to grow with us. If you want to be part of an inclusive, adaptable, and forward-thinking organization, apply now.
We are currently seeking a Lead ML Platform Engineer to join our team in Charlotte, North Carolina (US-NC), United States (US).

Job Description:
Position Summary
The Lead ML Platform Engineer provides architecture and hands-on engineering leadership for the Cortex Predictive AI Platform across cloud and on-premises environments. This role will establish and implement reusable, secure, scalable standards that enable data scientists, ML engineers, and application teams to build, validate, deploy, monitor, and operate predictive models efficiently and reliably.
The successful candidate will lead technical design and engineering decisions across the ML platform lifecycle, including governed data and feature access, model development environments, training and validation workflows, model delivery pipelines, real-time and batch inference, observability, reliability, and operational readiness. This role will also mentor engineering teams and transfer knowledge to support sustainable platform operations and adoption.
Key Responsibilities
Define and lead the target architecture for predictive AI and ML platform capabilities spanning public cloud and on-premises environments.
Design, build, and operate reusable platform services supporting the end-to-end ML lifecycle: governed data and features, model development, training, validation, deployment, inference, monitoring, and operations.
Establish scalable reference architectures, engineering standards, reusable templates, and implementation patterns for ML workloads across the Cortex portfolio.
Lead platform engineering for GCP and multi-cloud environments, including secure connectivity, identity, network controls, compute, storage, and managed AI/ML services where applicable.
Design and operate Kubernetes-based ML platforms using GKE, OpenShift, and associated container, workload orchestration, and resource-management capabilities.
Implement and improve MLOps capabilities for experiment tracking, model packaging, validation, approval gates, model registry integration, deployment automation, rollback, and lifecycle management.
Build CI/CD pipelines and infrastructure automation for platform services, ML workflows, model delivery, and environment provisioning.
Enable model migration from legacy environments into standardized Cortex platform patterns, minimizing delivery risk and operational disruption.
Engineer production-grade real-time and batch inference capabilities, including API-based serving, scalable runtime patterns, resiliency, performance, and operational support.
Partner with data engineering, data governance, security, privacy, risk, model validation, and application teams to ensure data protection and control requirements are embedded into platform design.
Implement platform observability, including logs, metrics, traces, dashboards, alerts, service-level indicators, service-level objectives, and operational runbooks.
Drive reliability engineering practices for ML platform services, including capacity planning, high availability, disaster recovery, incident management, root-cause analysis, and continuous improvement.
Ensure platform designs meet enterprise security requirements for authentication, authorization, secrets management, encryption, data access, auditability, and environment isolation.
Provide technical leadership, architecture reviews, code reviews, design guidance, and mentoring to ML platform engineers and adjacent delivery teams.
Produce clear technical documentation, reference implementations, operational procedures, and knowledge-transfer materials to enable self-service adoption and long-term support.
Required Qualifications
8+ years of experience in platform engineering, cloud engineering, infrastructure engineering, SRE, MLOps, or related technical roles.
4+ years of experience designing, building, or operating enterprise AI/ML or data platforms.
Demonstrated experience leading architecture and engineering delivery for complex, production-grade cloud and/or on-premises platforms.
Strong hands-on experience with GCP and working knowledge of multi-cloud or hybrid-cloud architecture.
Experience with Kubernetes-based platforms, including GKE and OpenShift, in production environments.
Strong experience implementing MLOps capabilities, model lifecycle workflows, or ML platform services.
Proficiency in Python for platform automation, integration, operational tooling, or ML workflow development.
Experience with CI/CD, Git-based development, automated testing, deployment automation, and infrastructure-as-code practices.
Strong understanding of enterprise security, data protection, identity and access management, secrets management, encryption, audit logging, and secure software delivery.
Experience implementing observability, monitoring, alerting, dashboards, SLOs, incident response, and operational runbooks.
Experience mentoring engineers and communicating technical architecture decisions to engineering, product, security, data, and executive stakeholders.
Required Skills / Knowledge
Enterprise ML platform architecture and end-to-end predictive model lifecycle management.
GCP, hybrid cloud, multi-cloud, on-premises platform, networking, identity, and security concepts.
Kubernetes, GKE, OpenShift, containers, workload orchestration, and scalable compute platforms.
MLOps, model development environments, model registries, validation workflows, model deployment, and model monitoring.
Python, CI/CD, Git, automated testing, infrastructure automation, and API-based integration.
Real-time and batch inference architecture, model-serving patterns, performance optimization, and operational support.
Data protection, governance, access controls, encryption, auditability, and regulated-platform design.
Observability, telemetry, dashboards, alerting, SLI/SLO design, reliability engineering, and production troubleshooting.
Technical leadership, reusable pattern development, engineering documentation, and knowledge transfer.
Preferred Qualifications
Experience with Vertex AI or comparable cloud ML platform services.
Experience designing or operating on-premises AI/ML platforms, private cloud, or hybrid ML workloads.
Experience with feature stores, model registries, experiment tracking, data lineage, model governance, or model risk-management processes.
Experience supporting model migration, platform modernization, or transition from legacy data science and ML environments.
Experience with real-time, low-latency model-serving systems and event-driven inference architectures.
Experience with Terraform, Helm, Argo CD, Jenkins, GitHub Actions, GitLab CI, or similar automation and deployment tooling.
Experience in banking, financial services, healthcare, insurance, or another regulated enterprise environment.
Experience establishing self-service platform capabilities for data scientists, ML engineers, and application teams.
Expected Outcomes
A secure, scalable, and reusable Cortex ML platform architecture spanning public cloud and on-premises environments.
Standardized MLOps, CI/CD, and model-delivery patterns that reduce time to train, validate, deploy, and operate predictive models.
Reliable platform capabilities for governed data and features, model migration, batch and real-time inference, and production operations.
Improved observability, resiliency, service-level management, and operational readiness for ML platform services and models.
Reusable engineering standards, reference implementations, documentation, and knowledge-transfer assets that enable self-service adoption and sustainable platform support.

About NTT DATA:

NTT DATA is a $30 billion trusted global innovator of business and technology services. We serve 75% of the Fortune Global 100 and are committed to helping clients innovate, optimize and transform for long term success. As a Global Top Employer, we have diverse experts in more than 50 countries and a robust partner ecosystem of established and start-up companies. Our services include business and technology consulting, data and artificial intelligence, industry solutions, as well as the development, implementation and management of applications, infrastructure and connectivity. We are one of the leading providers of digital and AI infrastructure in the world. NTT DATA is a part of NTT Group, which invests over $3.6 billion each year in R&D to help organizations and society move confidently and sustainably into the digital future. Visit us at us.nttdata.com


NTT DATA endeavors to make https://us.nttdata.com accessible to any and all users. If you would like to contact us regarding the accessibility of our website or need assistance completing the application process, please contact us at https://us.nttdata.com/en/contact-us. This contact information is for accommodation requests only and cannot be used to inquire about the status of applications. NTT DATA is an equal opportunity employer. Qualified applicants will receive consideration for employment without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, disability or protected veteran status. For our EEO Policy Statement, please click here. If you'd like more information on your EEO rights under the law, please click here. For Pay Transparency information, please click here.

Numbers & Facts

LocationCharlotte, NC
IndustryManagement Consulting Services
Company Size10,000 employees or more
Year Founded1967
Websitehttp://americas.nttdata.com/Careers/Careers.aspx

Benefits

Retirement / Pension Plans

About Company

NTT DATA means Business

NTT DATA is your Innovation Partner anywhere around the world. With business operations in more than 50 countries, we put emphasis on long-term commitment and combine global reach and local intimacy to provide premier professional services from consulting, system development, business process and IT outsourcing, to cloud-based solutions.

NTT DATA Americas' Strategic Staffing group provides our clients with top notch technical talent to augment their core IT staff. Our approach is customer centric, partnering to assist you in achieving your strategic goals and IT initiatives. We get to know your company’s culture and the type of technical staff that thrive within your organization. We understand your specific technical and business requirements, timing, and budget.

  • NTT DATA is part of the NTT Group – a Fortune 31 Global IT & Telecom services company.
  • NTT Group one of the largest Telecommunications Companies in the world.
  • NTT DATA is ranked in the top 10 largest global IT services provider in the world.
Collectively, the integrated company generates $16B in annual revenues with over 130,000 employees across 50 countries Visit www.nttdata.com/americas to learn how our consultants, projects, managed services, and outsourcing engagements deliver value for a range of businesses and government agencies.

Skills

  • Access Controlunmatched
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  • Application Programming Interface (API)unmatched
  • Artificial Intelligence (AI)unmatched
  • Authenticationunmatched
  • Automationunmatched
  • Banking Servicesunmatched
  • Business Servicesunmatched
  • Capacity Managementunmatched
  • Cloud Architectureunmatched
  • Cloud Computingunmatched
  • Code Reviewsunmatched
  • Computer Networksunmatched
  • Consultingunmatched
  • Continuous Deployment/Deliveryunmatched
  • Continuous Improvementunmatched
  • Continuous Integrationunmatched
  • Cryptographyunmatched
  • Data Modelingunmatched
  • Data Scienceunmatched
  • Disaster Recoveryunmatched
  • Documentationunmatched
  • Ecosystemsunmatched
  • Embedded Systemsunmatched
  • Enterprise Architectureunmatched
  • Enterprise Protectionunmatched
  • Environmental Sciencesunmatched
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  • GCP (Good Clinical Practices)unmatched
  • Gitunmatched
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  • Health Insuranceunmatched
  • High Availabilityunmatched
  • Hybrid Cloudunmatched
  • Identity Data Managementunmatched
  • Incident Managementunmatched
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  • Information/Data Security (InfoSec)unmatched
  • International Businessunmatched
  • Jenkinsunmatched
  • Knowledge Transferunmatched
  • Leadershipunmatched
  • Machine Toolunmatched
  • Mentoringunmatched
  • Metricsunmatched
  • Model Validationunmatched
  • Multiplatform/Cross-Platformunmatched
  • Operational Supportunmatched
  • Operations Processesunmatched
  • Performance Tuning/Optimizationunmatched
  • Predictive Modelingunmatched
  • Privacy Controlsunmatched
  • Private Cloudunmatched
  • Procedure Implementationunmatched
  • Production Systemsunmatched
  • Public Cloudunmatched
  • Python Programming/Scripting Languageunmatched
  • Reliability Engineeringunmatched
  • Reporting Dashboardsunmatched
  • Research & Development (R&D)unmatched
  • Resource Managementunmatched
  • Risk Managementunmatched
  • Risk Modelingunmatched
  • Root Cause Analysisunmatched
  • Software Engineeringunmatched
  • Startupunmatched
  • Sustainabilityunmatched
  • Technical Leadershipunmatched
  • Technical Writingunmatched
  • Technical/Engineering Designunmatched
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