EKS Cluster & Memory Profiling Engineer

Seattle, WA, US • Posted 6 hours ago • Updated 6 hours ago
Full Time
No Travel Required
On-site
Depends on Experience
Fitment

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Job Details

Skills

  • Rust
  • EKS
  • JDK/JVM
  • EMR/Spark SQL
  • or EMR/Spark infrastructure
  • MCM
  • CDK
  • CargoBrazil
  • Smithy)
  • JVM engineer with EKS or EMR familiarity
  • runbooks
  • SOPs
  • design docs
  • End-to-end EKS cluster operations; container/pod-level memory profiling; resource request/limit right-sizing; VPA; node-pool and cgroup-level memory optimization

Summary

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EKS Cluster & Memory Profiling Engineer

Location: Seattle, WA
Client: Amazon
Job Type: Contract
Experience: 5+ Years

Job Description

We are seeking an experienced EKS Cluster & Memory Profiling Engineer with strong hands-on experience in Amazon EKS, Kubernetes, AWS infrastructure, memory profiling, performance analysis, and resource optimization.

The engineer will be responsible for end-to-end operations and optimization of assigned EKS services, with a focus on container and pod-level memory utilization, resource right-sizing, node-pool optimization, and production performance.

Responsibilities

  • Perform end-to-end operations and optimization of Amazon EKS clusters and Kubernetes workloads.

  • Conduct container and pod-level memory profiling and performance analysis.

  • Analyze memory utilization, memory pressure, OOM events, and resource consumption.

  • Right-size Kubernetes CPU and memory requests and limits based on production workload behavior.

  • Implement and optimize Vertical Pod Autoscaler (VPA) recommendations.

  • Optimize EKS node pools and workload placement for improved resource utilization.

  • Troubleshoot Linux cgroups, container memory usage, OOMKilled events, and resource contention.

  • Evaluate EC2 instance-family selection and right-sizing strategies.

  • Identify opportunities for Graviton/ARM64 adoption and infrastructure optimization.

  • Deploy production changes while maintaining performance, throughput, availability, and SLA requirements.

  • Perform before-and-after performance analysis to validate optimization results.

  • Develop technical documentation including runbooks, SOPs, and design documents.

  • Support large-scale infrastructure optimization and cost-reduction initiatives.

Basic Qualifications

  • 5+ years of hands-on production engineering experience in at least one of the following ecosystems: Rust, EKS, JDK/JVM, EMR/Spark SQL, or EMR/Spark infrastructure.

  • Strong experience with Amazon EKS and Kubernetes in production environments.

  • Experience with memory profiling, performance analysis, and resource optimization in large-scale distributed systems.

  • Experience with Kubernetes resource requests, limits, workload optimization, and capacity management.

  • Strong understanding of Linux memory management, containers, and cgroups.

  • Proven experience deploying production changes without degradation to performance, throughput, or availability SLAs.

  • Experience creating technical documentation for engineering audiences, including runbooks, SOPs, and design documentation.

Preferred Qualifications

  • Experience with Amazon internal tooling and deployment mechanisms such as MCM, CDK, CargoBrazil, and Smithy.

  • Familiarity with Graviton/ARM64 architectures and instance-family right-sizing strategies.

  • Experience with AI coding agents or automated workflow tooling.

  • Experience with fleet-scale optimization programs or large-scale infrastructure cost reduction initiatives.

  • Cross-archetype experience, such as JVM engineering combined with EKS or EMR experience.

Employers have access to artificial intelligence language tools (“AI”) that help generate and enhance job descriptions and AI may have been used to create this description. The position description has been reviewed for accuracy and Dice believes it to correctly reflect the job opportunity.
  • Dice Id: RTX17ee7d
  • Position Id: 1339-33630-1786974754
  • Posted 6 hours ago
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