Why This Role Stands Out
Advance your career in a dynamic hybrid environment as an ML-Ops/Platform Engineer, where you'll build and scale cutting-edge AI platforms using AWS and Azure. This role is perfect for experienced engineers passionate about cloud-native development and GenAI, offering significant opportunities for technical growth and impact. Join a forward-thinking team and shape the future of AI infrastructure.
Quick Overview
Seniority
Mid Senior
Work mode
Hybrid
Location
Charlotte, NC, United States
Posted
17 hours ago
DockerMicroservicesMongoDBAPI GatewayAWSService MeshAnsibleArgoCDAzureGitHub ActionsJavaJenkinsKubernetesPostgreSQLPythonRESTRedisTerraformVault
Job Description
Job Title: ML-Ops / Platform Engineer
Location: Charlote, NC
W2 Contract (Candidate Must work on Our W2)
W2 Contract (Candidate Must work on Our W2)
Job Description:
- Strong hands-on experience building and operating cloud-native applications and platforms on AWS and Azure, including VPC/VNet, IAM, Load Balancers, API Gateway, Lambda/Functions, EKS/AKS, ECS, App Services, Storage, Key Vault/Secrets Manager, and cloud networking.
- Deep expertise in AWS and Azure architecture, including multi-account/subscription design, landing zones, cloud security, high availability, disaster recovery, scalability, and cost optimization.
- Experience enabling and operationalizing Enterprise GenAI platforms, including model onboarding, AI gateways, inference platforms, vector databases, RAG, guardrails, and AI application enablement.
- Strong knowledge of Azure AI Foundry, Azure OpenAI, AWS Bedrock, SageMaker, model serving, embeddings, prompt engineering, AI evaluations, and agentic frameworks.
- Expert-level experience with Docker, Kubernetes/OpenShift, AKS, EKS, service mesh, ingress controllers, autoscaling, and multi-cluster platform operations.
- Strong DevOps and Platform Engineering experience, including GitHub Actions, Azure DevOps, Jenkins, GitOps, ArgoCD, Terraform, Ansible, automated testing, and release management.
- Proficiency in Python, Java, REST APIs, microservices, and distributed systems development.
- Experience with MongoDB, Redis, PostgreSQL, Vector Databases, caching strategies, state management, and high-throughput data platforms.
- Strong understanding of cloud security, IAM, secrets management, observability, monitoring, logging, SRE practices, and production support.
- Experience troubleshooting and optimizing cloud-hosted, containerized workloads for performance, resiliency, scalability, and cost efficiency.
- Ability to partner with application, platform, infrastructure, and security teams to accelerate GenAI and cloud modernization initiatives.
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