AI/ML Platform Engineer

Mercedes-Benz Vans USA

Atlanta (GA)

On-site

USD 150,000 - 200,000

Full time

4 days ago
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Benefits offered by this job

Mitarbeiterhandy möglich
Mitarbeiter Events
Gesundheitsmaßnahmen
Betriebliche Altersversorgung
Mobilitätsangebote
Flexible Arbeitszeit möglich
Mitarbeiterrabatte möglich
Coaching
Parkplatz
Kantine

Job summary

Mercedes-Benz USA sucht einen erfahrenen AI/ML Platform Engineer, der die Grundlagenplattformen für KI-Delivery gestaltet, baut und betreibt. Sie unterstützen Data Scientists, KI-Ingenieure und Geschäftsteams beim Entwickeln und Skalieren von KI-Lösungen.

Sie arbeiten an Cloud-basierten Plattformen, MLOps, Modell-Lifecycle-Tools und wiederverwendbaren Engineering-Services. Ziel ist zuverlässige, skalierbare Infrastruktur, Multi-Tenant-Architekturen und operative Exzellenz.

Qualifications

  • Starke Python-, SQL- und PySpark-Kompetenz sowie verteilte Datenverarbeitung.
  • Erfahrung mit Azure Databricks, Unity Catalog, Delta Lake, MLflow und Feature Store.
  • Erfahrung in Azure/AWS-Cloud-Plattformen für Enterprise AI/ML-Workloads.
  • Erfahrung mit Modell-Deploy Pipelines, Registry-Management, Experiment-Tracking.
  • CI/CD, Workflow-Orchestrierung und Production AI Plattformbetrieb.
  • Erfahrung mit Docker, Kubernetes, IaC und Cloud-Native-Architekturen.
  • Unterstützung von GPU-gestützten Workloads und skalierbarer Infrastruktur.
  • Starke Software-Engineering-, Automatisierungs- und Produktionssupport-Praktiken.

Responsibilities

  • Entwurf, Build und Betrieb von Enterprise AI/ML Plattform-Fähigkeiten.
  • Entwicklung von Modell-Deploy-Pipelines, Registry, Experiment-Tracking.
  • Schaffung wiederverwendbarer Plattform-Komponenten und Automatisierungs-Frameworks.
  • Bereitstellung robuster Plattform-Grundlagen für ML, generative AI und produktive Initiativen.
  • Aufbau Multi-Tenant-Architekturen, Isolation und Governance über Teams hinweg.
  • Gewährleistung Zuverlässigkeit, Sicherheit, Observability und Kostenoptimierung.
  • Führung von Betriebsexzellenz, Incident Response und fortlaufender Plattform-Verbesserung.
  • Zusammenarbeit mit Data Scientists, AI-Ingenieuren, Architekten und Stakeholdern.

Skills

Python
SQL
PySpark
Distributed processing
Azure Databricks
Cloud platforms
CI/CD
Docker
Kubernetes
MLOps
Model serving
Observability
Automation
Production operations

Education

Bachelor's degree in CS/Engineering
8+ years experience

Tools

Azure Databricks
Delta Lake
MLflow
Unity Catalog
Feature Store
Model Serving

Job description

About Us

Mercedes-Benz USA is responsible for the sales, marketing and service of all Mercedes-Benz and Maybach products in the United States. In our people, you will find tremendous commitment to our corporate values: 'PRIDE = Passion, Respect, Integrity, Discipline, and Execution'. Our products and employees reflect this dedication. We are looking for diverse top-notch individuals to join the Mercedes-Benz Team and uphold these hallmarks.

Aufgaben

Mercedes-Benz USA is responsible for the sales, marketing and service of all Mercedes-Benz and Maybach products in the United States. In our people, you will find tremendous commitment to our corporate values: 'PRIDE = Passion, Respect, Integrity, Discipline, and Execution'. Our products and employees reflect this dedication. We are looking for diverse top-notch individuals to join the Mercedes-Benz Team and uphold these hallmarks.

Job Overview

The AI/ML Platform Engineer is responsible for the foundational platform capabilities that power AI and machine learning delivery across Mercedes-Benz USA. This role designs, builds, and operates shared AI/ML infrastructure, deployment pipelines, model lifecycle tooling, and reusable engineering services that enable data scientists, AI engineers, and business teams to develop and scale AI solutions efficiently.

As the platform foundation of the Applied AI Engineering & Operations team, this role supports classical machine learning, generative AI, agent-based solutions, and enterprise-scale analytics workloads. The ideal candidate combines strong platform engineering expertise, cloud experience, MLOps knowledge, and production operations experience with a passion for building reliable and scalable engineering foundations.

Responsibilities

AI/ML Platform Engineering & Delivery (60%)

  • Design, build, and operate enterprise AI/ML platform capabilities and shared engineering services.
  • Develop and maintain model deployment pipelines, model registry capabilities, experiment tracking, and foundational MLOps tooling.
  • Create reusable platform components, templates, automation frameworks, and deployment standards that accelerate AI delivery.
  • Provide the platform foundations supporting machine learning, generative AI, agent-based solutions, and AI productization initiatives.
  • Design and manage multi-tenancy patterns, resource isolation strategies, and workload governance across teams and business domains.
  • Ensure platform reliability, scalability, security, observability, and cost optimization across AI workloads.
  • Drive operational excellence through monitoring, incident response, resiliency improvements, and continuous platform enhancements.

Platform Architecture & Engineering Standards (20%)

  • Define and evolve platform architecture, deployment patterns, and engineering standards for AI/ML delivery.
  • Evaluate emerging platform technologies and engineering approaches that improve scalability, performance, and developer productivity.
  • Partner with architecture, infrastructure, security, and engineering teams to ensure alignment with enterprise standards.
  • Provide technical leadership for platform investments, architecture decisions, and modernization initiatives.

Operational Excellence & Reliability (10%)

  • Establish best practices for monitoring, logging, performance management, platform support, and operational readiness.
  • Develop engineering standards, documentation, automation, and operational runbooks.
  • Promote continuous improvement of platform reliability, supportability, and operational maturity.

Collaboration & Technical Leadership (10%)

  • Collaborate with data scientists, AI engineers, architects, infrastructure teams, and business stakeholders.
  • Provide technical mentorship and guidance across the AI Engineering organization.
  • Support knowledge sharing, cross-training, and engineering excellence initiatives.
Qualifikationen

Technical Skills & Tools

Required
  • Strong proficiency in Python, SQL, PySpark, and distributed data processing frameworks.
  • Experience with Azure Databricks, including Unity Catalog, Delta Lake, MLflow, Feature Store, and Model Serving.
  • Experience with Azure, AWS, or comparable cloud platforms supporting enterprise AI and machine learning workloads.
  • Experience with model deployment pipelines, model registry management, experiment tracking, monitoring, and lifecycle management.
  • Experience with CI/CD, workflow orchestration, and production AI platform operations.
  • Experience with model serving, inference optimization, and scalable AI infrastructure.
  • Experience with Docker, Kubernetes, Infrastructure as Code, and cloud-native deployment architectures.
  • Experience supporting GPU-enabled workloads, distributed compute environments, and enterprise-scale platform operations.
  • Experience with event-driven architectures, streaming technologies, and platform integration patterns.
  • Experience with observability platforms, performance optimization, reliability engineering, and cloud cost management.
  • Strong software engineering, automation, and production support practices.
Preferred Skillset
  • Experience with Azure OpenAI, AWS Bedrock, or equivalent enterprise AI platforms.
  • Experience with vector databases and retrieval technologies.
  • Experience supporting generative AI and agent-based solutions at scale.
  • Familiarity with Responsible AI, AI governance, security, and risk management frameworks.
Qualifications
Required
  • Bachelor's degree in Computer Science, Engineering, Data Science, Information Systems, or a related technical field.
  • 8+ years of experience in software engineering, machine learning engineering, AI platform engineering, or related disciplines.
  • Demonstrated experience designing, building, and operating enterprise AI/ML platforms.
  • Strong understanding of cloud-native architectures, MLOps, deployment automation, monitoring, and production operations.
  • Experience building reusable engineering frameworks, platform services, or shared infrastructure capabilities.
  • Strong communication, collaboration, and stakeholder management skills.
Preferred Experience
  • Master's degree in Computer Science, Engineering, AI/ML, or related field.
  • Experience delivering enterprise-scale AI/ML platforms supporting multiple business domains.
  • Experience operating in regulated or compliance-sensitive environments.
  • Experience scaling platform engineering capabilities supporting machine learning, generative AI, and agent-based systems.
Additional Information
  • Position requires regular collaboration with business, technology, and external partner teams across multiple time zones.
  • Some travel required for team, partner, and business engagements.
  • This role is part of MBUSA's Data Insights & AI organization and contributes to the company's long-term AI strategy and operating model.
EEO Statement

Mercedes-Benz USA is committed to fostering an inclusive environment that appreciates and leverages the diversity of our team. We provide equal employment opportunity (EEO) to all qualified applicants and employees without regard to race, color, ethnicity, gender, age, national origin, religion, marital status, veteran status, physical or other disability, sexual orientation, gender identity or expression, or any other characteristic protected by federal, state or local law.

Benefits
  • Mitarbeiterhandy möglich
  • Mitarbeiter Events
  • Gesundheitsmaßnahmen
  • Betriebliche Altersversorgung
  • Mobilitätsangebote
  • Flexible Arbeitszeit möglich
  • Mitarbeiterrabatte möglich
  • Coaching
  • Mitarbeiterbeteiligung möglich
  • Parkplatz
  • Gute Anbindung
  • Barrierefreiheit
  • Kinderbetreuung
  • Kantine, Café

ContactMercedes-Benz USA, LLC

One Mercedes-Benz Drive30328 AtlantaDetails zum Standort

MBUSA Talent Acquisition E-Mail: talent_acquisition@mbusa.com

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