Live opening · Posted 5 days ago

Senior Software Engineer - SRE & AIOps

ServiceNow · Santa Clara, CALIFORNIA, United States
Smartrecruiters Hybrid Full-time
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At a glance

The key details from the original listing.

Posted 5 days ago
CompanyServiceNow
LocationSanta Clara, CALIFORNIA, United States
Job typeFull-time
Work modeHybrid
SourceSmartrecruiters
Listed5 days ago

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About the role

Description supplied by the original job listing.

About the role:
ServiceNow is seeking a Senior Software Engineer - SRE & AIOps to contribute to infrastructure automation, operational resilience, and toil elimination across our hybrid cloud and data center operations. Embedded within the Site Reliability & Database Engineering organization, you will implement automation-first systems that reduce manual intervention, accelerate incident remediation, and enable our global engineering teams to operate reliably at scale.
This role combines solid hands-on technical expertise in Kubernetes, cloud platforms, and DevOps practices with growing technical leadership capabilities. You will contribute to SRE tooling design, develop auto-remediation capabilities, and help establish patterns that maintain ServiceNow's cloud platform reliability while minimizing operational toil across follow-the-sun global teams.
What you get to do in this role:
Deploy, operate, and troubleshoot production Kubernetes clusters across hybrid and multi-cloud environments, maintaining operational standards and supporting high-velocity application deployments.
Implement and maintain closed-loop auto-remediation systems that detect, classify, and resolve transient infrastructure failures, leveraging automation frameworks and machine learning insights to reduce MTTR and on-call burden.
Contribute to the design and evolution of SRE tooling stack, including monitoring platforms, incident management systems, log aggregation, and observability integrations that support global on-call operations.
Develop and maintain SLO frameworks, alerting policies, and automated runbooks that empower on-call engineers to resolve issues autonomously while managing alert fatigue.
Build and maintain Infrastructure-as-Code frameworks and GitOps pipelines that enable reproducible infrastructure deployments across hybrid and multi-cloud environments with security and compliance guardrails.
Support hybrid cloud and data center operations, including on-premises infrastructure, public cloud environments, and workload optimization across multi-region deployments.
Contribute to adoption of containerization, microservices, and DevOps patterns across engineering teams, establishing CI/CD best practices and network security controls.
Support on-call rotation operations and incident response processes across different time zones, helping develop runbooks and contributing to post-incident reviews that drive continuous improvement.
Share knowledge and mentor junior SRE engineers on reliability patterns, incident investigation techniques, and automation best practices.
Champion a culture of blameless incident analysis, data-driven decision-making, and continuous improvement through knowledge sharing and documentation.
Identify and systematically automate repetitive operational tasks, from infrastructure provisioning to incident response, improving team efficiency and capacity.
To be successful in this role you have:
Kubernetes Proficiency: Solid hands-on experience operating production Kubernetes clusters, including deployment models, pod orchestration, resource management, network policies, and troubleshooting runtime issues.
Incident Remediation Experience: Demonstrated experience designing and implementing automated remediation systems, including alert automation, runbook development, and self-healing mechanisms.
Cloud Platform Knowledge: Strong hands-on experience with AWS (EKS, EC2, RDS) and/or Azure (AKS, VMs) or GCP (GKE), with understanding of core SRE-related services.
DevOps & IaC Skills: Solid experience with Infrastructure-as-Code tools (Terraform, CloudFormation) and GitOps practices.
SRE Tooling Familiarity: Working knowledge of observability platforms, incident management systems, and log aggregation tools.
Distributed Systems Understanding: Understanding of distributed system challenges, fault tolerance, and resilience patterns.
On-Call Operations: Experience participating in on-call rotations and understanding 24/7 operational models, runbook development, and escalation procedures.
Cloud & Hybrid Operations: Hands-on experience working with cloud infrastructure and understanding hybrid cloud concepts.
Systems Administration: Strong foundation in Linux system administration, performance troubleshooting, and scripting (Python, Go, or Bash).
Collaborative Mindset: Ability to work effectively with infrastructure and application teams, contribute to technical discussions, and help drive reliability improvements.
Qualifications
Experience in leveraging or critically thinking about how to integrate AI into work processes, decision-making, or problem-solving. This may include using AI-powered tools, automating workflows, analyzing AI-driven insights, or exploring AI's potential impact on the function or industry.
5+ years in software engineering or infrastructure operations, with 3+ years in SRE, DevOps, or cloud platform engineering roles with a Bachelor's degree; or 3 years and a Master's degree; or a PhD without experience; or equivalent work experience.
2+ years of hands-on experience working with production Kubernetes clusters.
Proficiency in at least one Infrastructure-as-Code tool: Terraform, CloudFormation, or equivalent.
Demonstrable hands-on experience with at least one major cloud platform: AWS, Azure, or GCP.
Experience operating in on-call environments and participating in incident response.
Experience implementing or improving automated remediation and alert systems.
Strong foundation in Linux system administration, performance troubleshooting, and scripting (Python, Go, Bash).
Demonstrated commitment to reliability engineering and continuous improvement through hands-on contributions.
Bachelor's degree in computer science, Computer Engineering, or related field (or equivalent professional experience).
Preferred:
Kubernetes certification (CKA, CKAD, or equivalent).
Experience with service mesh technologies or advanced Kubernetes networking.
Background in cloud migration or infrastructure modernization projects.
Experience with cost optimization in cloud environments.
Track record of implementing automation solutions that significantly reduced operational toil.
Why This Role?
This role offers the opportunity to work with infrastructure automation and reliability engineering at scale. You will implement systems and practices that directly reduce operational burden across ServiceNow's global engineering teams. Your contributions will help establish reliable, automated infrastructure operations and provide a clear career path toward senior technical leadership. This is a role for an engineer who enjoys solving complex operational challenges, continuous learning, and working collaboratively to improve how systems operate.
For positions in this location, we offer a base pay of $143,200 - $243,400, plus equity (when applicable), variable/incentive compensation and benefits. Sales positions generally offer a competitive On Target Earnings (OTE) incentive compensation structure. Please note that the base pay shown is a guideline, and individual total compensation will vary based on factors such as qualifications, skill level, competencies, and work location. We also offer health plans, including flexible spending accounts, a 401(k) Plan with company match, ESPP, matching donations, a flexible time away plan and family leave programs. Compensation is based on the geographic location in which the role is located and is subject to change based on work location.

Employment type
Full-time

Work arrangement
Hybrid

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