AI Platform Engineer

FULLTHROTTLE
Remote

About The Position

As a fully remote, fast-growing startup, we move quickly, embrace innovation, and follow an Agile/Scrum framework to deliver impactful solutions. We're looking for someone who thrives in a collaborative environment, enjoys solving complex technical challenges, and wants to help build and scale the future of AI at fullthrottle.ai. The Role: As our AI Platform Engineer, you will ensure the reliable, secure, and scalable deployment of AI systems across fullthrottle’s platforms. You’ll focus on building and managing production infrastructure, developing robust APIs and microservices, and optimizing for cost-effective operations. This role requires hands-on expertise in AI/ML platform engineering, production deployment of AI systems, infrastructure as code, and cloud-native engineering to deliver high-performance AI solutions. You will play a pivotal role in implementing best practices for deploying, operating, and scaling AI/ML systems in production, defining infrastructure as code for AWS, and driving observability and optimization across our AI production environments.

Requirements

  • Minimum 2+ years of hands-on AI engineering experience, including building and deploying scalable infrastructure for AI/ML systems.
  • Expert-level Python and AWS (Lambda, API Gateway, CloudWatch).
  • Hands-on experience with AI/ML systems, including model integration, inference workflows, or lightweight model development, along with Amazon Bedrock (including AgentCore Runtime), LLM prompt engineering, or agent frameworks. Must be comfortable building and iterating on AI/ML-driven application logic and agent workflows in production.
  • Strong experience with Terraform and/or CloudFormation for AWS resource management.
  • Proven ability to operate large-scale, multi-tenant SaaS architectures in production.
  • Deep understanding of system monitoring, cost optimization, and compliance in cloud environments.
  • Bachelor’s degree in Computer Science, Data Engineering, or a related field.
  • Proven ability to work effectively in cross-functional teams and communicate technical concepts to non-technical stakeholders.

Nice To Haves

  • Relevant certifications in AWS or DevOps are a plus.

Responsibilities

  • Build and manage production-grade APIs and microservices to support scalable AI deployments.
  • Build, tune, and deploy AI agents using Amazon Bedrock AgentCore Runtime and the Strands Agent SDK. Design system prompts, implement tool routing, and optimize for latency and accuracy.
  • Define and manage Terraform modules for AWS services (Lambda, S3, RDS, OpenSearch, etc.).
  • Monitor system performance and implement observability practices using tools such as New Relic, Cloudwatch, and OpenTelemetry to ensure reliability, proactive alerting, and rapid issue resolution.
  • Build and maintain CodePipeline/CodeBuild pipelines for automated testing, Docker builds, and ECS deployments.
  • Optimize infrastructure and operations for cost, latency, and reliability, ensuring efficient use of resources.
  • Ensure systems meet compliance standards and maintain robust security controls.
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