Lead Site Reliability Engineer

JPMorgan Chase & Co.

Bengaluru

On-site

INR 4,000,000 - 6,000,000

Full time

5 days ago
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Job summary

JPMorgan Chase & Co. in Bengaluru invites a Lead Site Reliability Engineer to shape reliability across enterprise platforms. You will lead a team, own complex systems, and guide AI-assisted reliability across the SDLC.

The role demands deep expertise in observability, on-call incident leadership, and cost-aware design. You will mentor engineers, drive resiliency reviews, and push for secure, scalable operations.

Qualifications

  • Formal training or certification in SRE concepts with 5+ years of experience.
  • Strong production coding skills in Python/Go/Java/C/C++/Rust.
  • Hands-on experience operating production systems at scale with on-call ownership.
  • Practical SLI/SLO/error-budget experience or aptitude to own and evolve it.
  • Deep observability: Grafana, Prometheus, Splunk, Datadog, Dynatrace, etc.
  • Proficiency with Unix/Linux plus infrastructure automation (Kubernetes, Terraform, CI/CD).
  • Strong systems thinking across interfaces, contracts, and failure modes.
  • Fluency directing AI tools to perform engineering work with sound judgment when human expertise is needed.
  • Security-first and outcome-oriented mindset with risk judgment from design to production.
  • Experience using enterprise-authorized AI capabilities to improve SRE workflows.

Responsibilities

  • Engineer reliability into enterprise-scale platforms by writing production software: automation, self-healing, and tooling that remove manual operations.
  • Model desired state declaratively and let automation reconcile reality to it using trusted data sources.
  • Instrument telemetry and reason over data to drive detection, diagnosis, and remediation.
  • Define and operationalize SLIs and SLOs with stakeholders; implement SLO-based alerting and observability.
  • Own services end-to-end, ensuring reliability, performance, security, and cost with operability built in.
  • Lead on-call rotations and mentor engineers during major incidents; drive durable fixes.
  • Drive down toil through automation and treat repeated manual work as a bug to fix.
  • Work AI-native across the SDLC with validation standards to ensure speed and correctness.
  • Decompose reliability problems for AI agents and integrate results into production systems with security considerations.
  • Lead reuse-first AI workflows across SDLC/toolchain for traceability, resiliency, and security controls.

Skills

Site Reliability
Production coding
On-call ownership
SLI/SLO
Observability
Kubernetes
Terraform
Security mindset
AI in SDLC
AI tooling validation

Tools

Kubernetes
Terraform
Grafana/Prometheus
Datadog
Dynatrace
CI/CD tooling

Job description

  • Job Schedule Full time
  • Job Shift Day
Job Description

Assume a critical role in defining the future of a globally recognized firm and have a direct and significant effect in a realm tailored for top achievers in site reliability.

As a Lead Site Reliability Engineer at JPMorgan Chase within the Infrastructure Platforms team, you hold a leadership role in your team, demonstrate strong knowledge across multiple technical domains, and advise others on the technical and business issues facing them. Take lead and conduct resiliency design reviews, break up complex problems into digestible work for other engineers, act as a technical lead for medium to large-sized products, and provide advice and mentoring to other engineers.

Job responsibilities

  • Engineer reliability into enterprise-scale platforms by writing production software: automation, control loops, self-healing, and tooling that remove manual operations rather than institutionalise them
  • Build systems around declarative, intent-based design: model the desired state as data in a trusted source of truth and let automation continuously reconcile reality to it, rather than driving change through imperative, one-off scripts
  • Treat data as a first-class reliability asset: instrument, collect, and reason over telemetry and state data to drive detection, diagnosis, and closed-loop remediation
  • Define and operationalize SLIs and SLOs with stakeholders; implement SLO-based alerting, telemetry standards, and actionable observability
  • Own services end-to-end, taking accountability for reliability, performance, security, and cost, and building operability and observability in from the start
  • Share an on-call rotation and act as a technical leader during major incidents: drive triage, mitigation, communications, and blameless post-incident reviews, then engineer the durable fix
  • Drive down toil measurably through automation and better engineering; treat repeated manual work as a bug to be coded out
  • Work AI-native across the SDLC (AI-assisted development, code review, test generation, incident and root-cause analysis) with clear validation standards (secure coding, peer review, automated testing), so speed never compromises correctness
  • Decompose ambiguous reliability problems into clear, executable work for yourself and for AI agents, and integrate the results into coherent, production-ready systems; set reliability standards and raise the engineering bar across your team and partner organizations; apply security and operational-risk judgment throughout the engineering lifecycle
  • Leads reuse-first adoption of AI-assisted reliability workflows across SDLC/toolchain practices (e.g., CI/CD quality checks, test/validation automation, and operational readiness), ensuring traceability/auditability, resiliency, and security controls.
  • Uses enterprise-authorized AI capabilities within the work environment to accelerate major-incident triage, troubleshooting, and post-incident analysis, validating outputs and handling operational data according to sensitivity and security requirements.

Required qualifications, capabilities, and skills

  • Formal training or certification on site reliability engineering concepts and 5+ years applied experience
  • Strong production coding skills in an industry-standard language (e.g. Python, Go, Java, C++, Rust); this is a software engineering role
  • Hands-on experience operating production systems at scale, including on-call ownership, incident response, and designing for reliability/operability
  • Practical SLI/SLO/error-budget experience (or clear aptitude and appetite to own and evolve it)
  • Deep observability experience: white-box/black-box monitoring, SLO-based alerting, and telemetry using tools such as Grafana, Prometheus, Splunk, Datadog, Dynatrace, or equivalent
  • Proficiency with *nix plus infrastructure automation and tooling (e.g. Kubernetes, Terraform, CI/CD)
  • Strong systems thinking across interfaces, contracts, failure modes, and interactions at scale
  • Fluency directing AI tools to do real engineering work (beyond autocomplete), with sound judgment on when AI applies vs. when deep human expertise is required
  • Security-first and outcome-oriented mindset: integrate risk judgment from design through production, with focus on reliability, impact, and cost (not activity)
  • Demonstrated experience using enterprise-authorized AI capabilities within the work environment to improve SRE workflows (e.g., incident investigation support and knowledge capture) with strong validation habits and awareness of data sensitivity.
  • Ability to evaluate AI-assisted operational recommendations for correctness and risk, define appropriate guardrails for team usage, and ensure outcomes align to resiliency and security expectations.

Preferred qualifications, capabilities, and skills

  • Networking depth (routing, switching, security, packet/flow analysis) or experience operating network-adjacent platforms: a strong plus, not a requirement
  • Experience across multiple infrastructure domains or programming languages
  • Demonstrated ongoing AI skill development (e.g. context/prompt engineering, agent orchestration) and use of AI to redesign workflows for measurable impact
  • Prior experience in regulated or large-scale enterprise environments

Experience establishing engineering culture

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