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Cloud Software Engineer

StellantisAuburn Hills, MINot statedFull-time

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Aug 14, 2026, 2:53 PM UTC
3 hours ago
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Aug 14, 2026, 2:53 PM UTC
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Description

What we do: Design and develop cloud-native applications and microservices on AWS. Build scalable, highly available backend systems using modern architecture patterns. Develop and maintain RESTful/GraphQL APIs and event-driven services. Architect distributed systems with focus on reliability, security, scalability, and cost optimization. Implement CI/CD pipelines, infrastructure-as-code, and automated testing. Build observability frameworks including logging, monitoring, and alerting. Optimize system performance, latency, throughput, and resource utilization. Integrate AI/ML or GenAI services (e.g., AWS Bedrock) where applicable to enhance automation or analytics. Collaborate with cross-functional teams including platform, DevOps, data, QA, and business stakeholders. Core Technical Stack: Cloud & Infrastructure AWS (EC2, S3, Lambda, API Gateway, IAM, CloudWatch, SNS/SQS, DynamoDB, RDS) Containerization: Docker Orchestration: EKS/ECS/Fargate Infrastructure as Code: Terraform / CloudFormation CI/CD: GitHub Actions, GitLab CI, Jenkins, CodePipeline Observability: CloudWatch, DataDog, Grafana Backend Development Python (FastAPI, Flask) or Java/Node.js REST / GraphQL API design Microservices architecture Event-driven systems Caching strategies (Redis, ElastiCache) Data & Messaging PostgreSQL, MySQL, DynamoDB Elasticsearch / OpenSearch Kafka / SNS / SQS Data pipelines (Airflow or equivalent) AI/ML (Nice Leverage, Not Primary) AWS Bedrock or SageMaker integration RAG-based services or LLM API integration Model API orchestration and monitoring Basic Qualifications: Bachelor’s degree in Computer Science, Computer Engineering, Electrical Engineering, or a related field A minimum of 5 years of software development experience in production environments. Strong hands-on experience with AWS cloud services. Experience designing and operating distributed systems. Proficiency in at least one backend language (Python, Java, or Node.js). Experience with containerized deployments (Docker + Kubernetes/ECS/EKS). Strong understanding of system design, scalability, and cloud security best practices. Experience with CI/CD, automated testing, and infrastructure automation. Preferred Qualifications: Master’s degree in Computer Science, Computer Engineering, Electrical Engineering, or a related field Experience integrating AI/ML services into production systems. Experience with Databricks or large-scale data processing. Familiarity with automotive systems or enterprise PLM environments. Knowledge of event streaming architectures and high-throughput systems. Experience in cost optimization for cloud workloads. What Success Looks Like: Highly available, scalable AWS services deployed to production. Reduced operational overhead through automation and cloud-native solutions. Optimized infrastructure cost and improved system performance. Clean, maintainable, well-documented code with strong test coverage. Measurable business impact through reliable and efficient cloud platforms.