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AI Platform Engineer
Location
United States
Posted
2 days ago
Salary
0
Seniority
Mid Level
Job Description
AI Platform Engineer
Givzey
Role Description This role owns the platform that keeps Givzey secure, compliant, reliable, and scalable. You'll work across AWS infrastructure, Infrastructure as Code, CI/CD, AI services, observability, and developer tooling to make sure engineers spend their time building product instead of fighting deployments. You'll partner closely with engineering, ML, and product to design the platform that powers everything from customer-facing APIs to LLM workflows running on Amazon Bedrock and SageMaker. This is not a "keep the lights on" devops role. You'll actively shape how we deploy software, provision infrastructure, manage AI workloads, and scale the engineering organization. Who thrives here - You're the engineer who gets excited about replacing a manual deployment with a one-click pipeline. - Automating infrastructure instead of clicking around the AWS console. - Designing systems that make the rest of engineering move faster. - You think in terms of reliability, observability, automation, and repeatability. - You're comfortable wearing multiple hats. What you'll do - Cloud infrastructure - Design, build, and maintain our AWS infrastructure. - Manage networking, IAM, compute, storage, databases, and security across environments. - Build scalable infrastructure capable of supporting rapid product growth. - Improve resiliency, availability, and disaster recovery. - Infrastructure as Code - Own our Infrastructure as Code strategy using Pulumi. - Build reusable infrastructure components and shared modules. - Eliminate manual infrastructure changes wherever possible. - Review and evolve our cloud architecture as the company grows. - CI/CD - Build and maintain deployment pipelines for applications and infrastructure. - Improve release automation and deployment safety. - Reduce friction in local development and engineering workflows. - Help establish engineering best practices around testing and deployment. - AI Platform - Build and maintain the infrastructure powering our AI systems. - Work with services such as Amazon Bedrock, SageMaker, OpenSearch, and supporting AWS services. - Support LLM evaluation pipelines, RAG infrastructure, vector search, and model deployment. - Partner with ML engineers to operationalize new AI capabilities. - Platform Operations - Monitor production systems and improve observability. - Respond to production incidents and drive root-cause analysis. - Improve system reliability through automation rather than manual processes. - Continuously evaluate performance, cost, and scalability. - Engineering - Collaborate closely with product, engineering, ML, and customer success. - Help define technical standards and infrastructure direction. - Participate in architecture discussions across the platform. - Mentor other engineers on cloud infrastructure and operational best practices. Qualifications - 5+ years building and operating production software systems. - Strong experience with AWS in production environments. - Experience designing Infrastructure as Code using Pulumi, Terraform, or CloudFormation. - Experience building CI/CD pipelines using GitHub Actions. - Strong Python experience. - Experience building APIs and backend systems. Requirements - You should be comfortable working with technologies such as: - AWS (multi-account environments using AWS Organizations) - ECS - Docker - IAM - VPC networking - RDS - S3 - Lambda - CloudWatch - SNS/SQS - Event-driven architectures - Experience with some of the following is highly desirable: - Amazon Bedrock - SageMaker - Vector databases - Retrieval-Augmented Generation (RAG) - LLM evaluation pipelines - Model deployment - ML infrastructure - Dagster or similar orchestration platforms Working Style - You automate repetitive work instead of documenting it. - You care about reliability as much as shipping features. - You enjoy improving developer experience. - You think systems should become simpler over time. - You take ownership rather than waiting for someone else to fix infrastructure problems. Mindset - Strong written communication. - Comfortable working in ambiguity. - Curious about modern AI infrastructure and where it's headed. - Interested in building systems that engineers enjoy working in. - Excited by the challenge of building infrastructure from the ground up rather than inheriting a mature platform. Nice to have - Pulumi experience - Dagster experience - Amazon Bedrock - SageMaker - OpenSearch - ECS - PostgreSQL - Redis - New Relic or modern observability platforms - Experience supporting AI or ML products - SOC 2 or security/compliance experience - Startup experience What this isn't - This isn't a traditional DevOps role where tickets get tossed over the wall after development. - This isn't an SRE role focused exclusively on uptime. - This isn't an ML engineering role building models. - You're building the platform that allows all of those disciplines to move faster. - You'll own infrastructure decisions, improve how software gets delivered, and help shape the technical foundation of an AI company that's still early enough for your decisions to matter years from now.
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