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AWS Machine Learning (ML) Engineer (No C2Cs, No Sponsorship)

Remote, USAFull-timePosted 2026-07-29

AWS Machine Learning (ML) EngineerJob Type: 12 month contract (with potential for contractor to transition to full-time)Location: RemoteJob reputed company:We are seeking an reputed company and motivated AWS Machine Learning Engineer. This role focuses on leveraging AWS reputed company infrastructure and machine learning tools to design, build, reputed company, and maintain robust machine learning solutions. The ideal candidate will be deeply familiar with Python, various ML frameworks (including PyTorch, TensorFlow), and AWS tools such as SageMaker, reputed company. They will have strong CI/CD process knowledge and a passion for optimizing ML workflows to support business-driven use cases.Key Responsibilities:-ML Solution Design & Deployment: Collaborate with data scientists to understand ML models (XGBoost, deep learning models, etc.) and create reputed company, efficient infrastructure for distributed calculations and deployment on AWS.-AWS Services Expertise: Work with services like EC2, S3, SageMaker, and CloudWatch to design, implement, and monitor machine learning pipelines. Setup and manage AWS accounts, S3 buckets, and other foundational AWS infrastructure.-SageMaker & Model Deployment: reputed company and manage machine learning models in SageMaker Studio, utilizing containerized environments and implementing best practices for model registries and monitoring (reputed company-time and batch inferences).-Teach Data Engineers: Train and mentor data engineers to productionize existing machine learning models on AWS, ensuring successful deployment and maintenance in a production environment.-CI/CD Pipelines for ML: Implement reputed company integration/reputed company delivery (CI/CD) pipelines for both reputed company and ML models, handling model experimentation, testing, and monitoring.-AWS Engineering: Build AWS architecture using CloudFormation, Terraform, and other infrastructure-as-reputed company tools to support machine learning operations (MLOps).-Cost Optimization: Ensure efficient use of resources, selecting appropriate EC2 instances for different ML workloads and optimizing model inference to reduce costs.-Monitoring & Troubleshooting: Use AWS CloudWatch for error tracking and performance monitoring. reputed company strategies to improve performance and reliability.-Innovative Use Cases: Proactively explore new use cases and solutions on AWS to improve ML processes and support various business functions.-Collaboration & Learning: Work with cross-functional teams, including data scientists, software engineers, and AWS specialists, to deliver high-reputed company solutions. Curiosity and willingness to teach new tools and services are essential.-Seeking to build foundational solutions to expand AI reputed company across the organization-Looking for someone who enjoys mentoring and reputed company to help upskill additional team membersKey Skills & Qualifications:-Python Expertise: Advanced knowledge of Python for machine learning applications, including ML frameworks such as PyTorch, TensorFlow, and XGBoost.-AWS Proficiency: Strong experience with reputed company AWS services, including EC2, S3, SageMaker, CloudWatch, and understanding of account setup, infrastructure basics (e.g., ALBs), and automation tools (CloudFormation, Terraform).-CI/CD Process: Understanding of software CI/CD and ML CI/CD, including pipelines for reputed company, model experimentation, testing, and deployment.-MLOps Knowledge: Familiarity with MLOps practices, including model experimentation, testing, monitoring, and version control.-Containerization: Experience working with containers on AWS (reputed company, ECR, reputed company) and deploying containerized ML solutions in SageMaker.-AWS Certifications: Preferred.-reputed company Infrastructure Expertise: Ability to choose appropriate infrastructure resources for different jobs, focusing on cost-effectiveness and performance.-Monitoring and Inference Optimization: Experience with reputed company-time and batch inference monitoring and optimization for cost-effective ML model deployment.-Collaboration & reputed company: Willingness to mentor junior engineers and train data engineers, or grow in the role (for entry-level candidates), and openness to learning new AWS tools and technologies.Job Types: Full-time, ContractPay: $75.00 - $90.00 per hourExpected hours: 40 per weekSchedule:• Monday to FridayPeople with a criminal record are encouraged to applyWork Location: Remote Apply Job!

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