Kubernetes Engineer

Chantilly, VA, US • Posted 1 day ago • Updated 1 day ago
Contract W2
75% Travel Required
On-site
Fitment

Dice Job Match Score™

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Job Details

Skills

  • Scripting
  • Kubernetes
  • Big Data
  • Apache Spark
  • Distributed Systems
  • Problem Solving
  • Artificial Intelligence
  • Scheduling
  • dashboards
  • reliability
  • Amazon Web Services
  • Identity and Access Management
  • automation
  • Information Engineering
  • Networking Skills
  • Infrastructure Management
  • Safety Principles
  • Lifecycle Management
  • Self Motivation
  • Scalability
  • Python (Programming Language)
  • Amazon Elastic Compute Cloud
  • Cloudformation
  • Cloudwatch
  • Management of Stress
  • Success Driven Person
  • Data Processing
  • Bash Shell
  • Open Source Technology
  • Computer Programming
  • Cloud Engineering
  • Data Logging
  • Cloud Platform System
  • Product Family Engineering
  • Amazon Virtual Private Cloud (VPC)
  • Autoscaling
  • Cost Optimisation
  • Storage Systems
  • Operational Excellence
  • Resource Management
  • Distributed Computing Environment
  • Capacity Management
  • Azure Machine Learning
  • Fault Detection and Isolation

Summary

Title: Senior Kubernetes Engineer

Location: All locations (Hybrid 3 Days Onsite)

Contract: 6+ month with extension for long-term

Only who are local to Office locations and can take Assessment before Submission and required for F2F interview for the final round

locations: Rockville, MD/Tysons, VA/Washington, DC/New York, NY/Jersey City, NJ/Woodbridge, NJ/Jericho, NY/Philadelphia, PA/Boston, MA/Chicago, IL/Dallas, TX/Boca Raton, FL/Denver, CO/Los Angeles, CA/San Francisco, CA

Role Overview

We are seeking a Senior Kubernetes Engineer to design, build, and optimize highly scalable Kubernetes infrastructure supporting large-scale, data-intensive workloads in AWS. This is a hands-on engineering role focused on Amazon EKS, Kubernetes platform operations, and distributed computing environments where reliability, automation, and performance are critical.

The ideal candidate has deep expertise in Kubernetes internals, cluster operations, and cloud-native infrastructure, with experience supporting large-scale Apache Spark or similar distributed processing platforms. You'll work alongside platform and data engineering teams to build resilient, secure, and cost-efficient infrastructure capable of supporting thousands of concurrent workloads.

What You'll Do

  • Design, deploy, and maintain highly available Amazon EKS clusters supporting large-scale data processing workloads.
  • Build and operate secure Kubernetes environments within private AWS VPCs, including air-gapped deployments, private container registries, and internal package repositories.
  • Troubleshoot complex Kubernetes, Karpenter, and distributed application issues including scheduling, autoscaling, networking, and cluster performance.
  • Optimize node provisioning using Karpenter, balancing workload performance, resiliency, and cloud cost optimization.
  • Design and implement strategies for Spot and On-Demand capacity management, including graceful interruption handling and workload recovery.
  • Configure Kubernetes resource management using ResourceQuotas, LimitRanges, PriorityClasses, taints, tolerations, and affinity rules to maximize cluster efficiency.
  • Deploy and optimize persistent storage solutions using Amazon EBS CSI and Amazon EFS CSI drivers for high-performance data processing workloads.
  • Build observability solutions with centralized logging, monitoring, alerting, and performance dashboards to proactively identify issues before production impact.
  • Design resilient platform architectures utilizing checkpointing, retry mechanisms, fault isolation, and automated recovery strategies.
  • Partner with platform, infrastructure, and data engineering teams to improve scalability, automation, security, and operational excellence.

Required Qualifications

  • 8+ years of infrastructure, cloud engineering, or platform engineering experience.
  • Deep expertise administering Kubernetes in large-scale production environments.
  • Strong experience designing and operating Amazon EKS clusters.
  • Experience with Kubernetes autoscaling technologies including Karpenter or Cluster Autoscaler.
  • Strong understanding of Kubernetes scheduling, networking, storage, security, and cluster lifecycle management.
  • Experience supporting Apache Spark or other distributed compute frameworks in Kubernetes environments.
  • Hands-on experience with AWS services including EC2, EBS, EFS, IAM, VPC, CloudWatch, and Auto Scaling.
  • Experience operating highly available, production-critical systems with a focus on performance, resiliency, and automation.
  • Strong scripting or programming experience using Python, Go, or Bash.
  • Experience implementing Infrastructure as Code using Terraform, CloudFormation, or similar technologies.
  • Strong troubleshooting skills across distributed systems and cloud-native infrastructure.

Preferred Qualifications

  • Kubernetes certifications (CKA, CKAD, or CKS).
  • AWS Certified Solutions Architect or AWS Certified Kubernetes-related certifications.
  • Experience operating air-gapped or highly secure cloud environments.
  • Contributions to Kubernetes, Karpenter, Spark, or other cloud-native open-source projects.
  • Experience implementing FinOps and cloud cost optimization strategies.
  • Background supporting large-scale data engineering, analytics, or AI/ML platforms.
  • Familiarity with GitOps tools such as ArgoCD or Flux.
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: 91134888
  • Position Id: 2026-3103
  • Posted 1 day ago
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