Performance & Observability Engineer

Herbert Smith Freehills LLP
London, UK
21 days ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Working hours
Regular working hours
Job source

Tech stack

Artificial Intelligence Application Layers Cloud Computing Databases Software Debugging DevOps Load Testing Uptime PCI Data Security Standards Windows PowerShell Query Optimization Reliability Engineering
+21 more
Cloud Services Kusto Query Language Data Logging Performance Testing Microsoft Power Automate Autoscaling Grafana Mttr Caching Reliability of Systems Backend Kubernetes Low Latency Front End Software Development Cloudwatch Terraform Splunk Dynatrace Service Stack Servicenow Microservices

Job description

The Performance & Observability Engineer plays a critical role in ensuring system reliability, scalability, and visibility across the entire technology stack. This role focuses on transitioning from traditional monitoring to full observability, enabling deep performance insights, real-time issue detection, and proactive optimisation. The ideal candidate will have expertise in performance engineering, distributed tracing, logging, metrics, and automation, driving improvements across cloud, infrastructure, and application layers., Performance Engineering & Optimisation

  • Analyse application, database, and infrastructure performance to identify bottlenecks and inefficiencies.
  • Develop performance benchmarks and SLIs to measure service responsiveness and stability.
  • Collaborate with SRE and DevOps teams to optimise CI/CD pipelines for performance improvements.
  • Collaborate with wider IT teams to Implement caching strategies, query optimisation, and autoscaling to enhance system efficiency.

Observability Platform Development & Implementation

  • Design and implement end-to-end observability frameworks covering metrics, logs, traces, and events.
  • Instrument services using existing tools (eg: Nexthink) to improve visibility.
  • Enable distributed tracing across microservices to enhance root cause analysis and performance debugging.
  • Standardise logging and telemetry collection across infrastructure, applications, and cloud services.
  • Define best practices and consistent approach across development teams to improve monitoring consistency.

Maturing from Monitoring to Full Observability

  • Transition from basic alerting to proactive insights, leveraging AI-driven anomaly detection.
  • Ensure comprehensive observability across frontend, backend, databases, cloud infrastructure, and networking.
  • Implement Service Level Indicators (SLIs), Service Level Objectives (SLOs), and Error Budgets to track system health.
  • Automate root cause analysis and incident detection through advanced monitoring techniques.

Incident Response & Reliability Engineering

  • Reduce Mean Time to Detect (MTTD) and Mean Time to Resolve (MTTR) through improved observability.
  • Integrate monitoring and alerting tools with incident response platforms (ie: ServiceNow).
  • Develop self-healing and auto-remediation mechanisms to reduce operational toil.
  • Improve alerting strategies by reducing false positives and improving signal-to-noise ratio.

Governance, Compliance & Reporting

  • Define observability best practices and governance models to ensure adoption across teams.
  • Ensure log retention, security, and compliance with standards (e.g., GDPR, SOC 2, PCI DSS).
  • Develop executive dashboards and reporting frameworks to showcase reliability and performance trends.

Key Performance Indicators

Maturity of Observability Capabilities

  • % of Services with Full Observability Coverage - Ensure visibility across the entire stack.
  • Instrumentation Completeness (%) - Track the number of services fully instrumented with logs, metrics, and traces.
  • Service-Level Indicator (SLI) Coverage - Ensure key performance indicators are defined and tracked.
  • Reduction in Blind Spots (%) - Improve monitoring coverage across all components.

Performance & Reliability Metrics

  • Application Response Time (P99, P95, P50 Latency) - Improve service performance.
  • System Throughput & Load Handling (%) - Increase service efficiency and scalability.
  • Reduction in Performance Bottlenecks (%) - Optimise infrastructure and application layers.
  • Successful Load Test Pass Rate (%) - Ensure applications meet expected performance benchmarks.

Incident Management & Operational Efficiency

  • Mean Time to Detect (MTTD) and Mean Time to Resolve (MTTR) - Reduce system downtime and recovery time.
  • Reduction in Noisy Alerts (%) - Improve alert relevance and reduce false positives.
  • Proactive Issue Detection (%) - Increase the percentage of incidents identified before user impact.
  • Error Budget Utilization (%) - Ensure system reliability is balanced with innovation velocity.

Automation & AI-Driven Observability (AIOps)

  • % of Issues Resolved via Automated Remediation - Reduce manual intervention in incident response.
  • Reduction in On-Call Burden (%) - Minimize alerts requiring human intervention.
  • Anomaly Detection Accuracy (%) - Improve proactive detection of performance issues.

Business & Customer Impact

  • Customer Experience Metrics (Latency, Errors, Uptime) - Ensure observability drives tangible business improvements.
  • Downtime Reduction (%) - Improve service availability and reliability.
  • Cost Optimisation from Performance & Observability (%) - Reduce operational inefficiencies and cloud expenses.

Requirements

Technical Skills

  • Experience in using and maintaining Observability & APM Tools - Grafana experience is essential
  • Experience of using KQL
  • Performance Testing & Load Testing
  • Cloud & Infrastructure Monitoring - AWS CloudWatch, Azure Monitor, GCP Operations Suite, Kubernetes Observability.
  • Knowledge of Log Aggregation & Analysis - eg: Grafana Loki, Splunk etc
  • Automation & Scripting - PowerAutomate, Terraform, PowerShell
  • Incident Response & ITSM - ServiceNow.
  • Sound understanding of firm’s applications, systems and tools across technology stack
  • DevOps experience is desirable
  • Nexthink experience is desirable

Soft Skills & Collaboration

  • Strong problem-solving and root cause analysis skills.
  • Ability to translate observability insights into business impact for stakeholders.
  • A continuous improvement mindset, focused on reducing toil and improving efficiency.
  • Experience working in a DevOps, SRE, or Platform Engineering environment., We are committed to attracting people from all backgrounds and creating a respectful and inclusive culture where everyone thrives. We see this as essential to our success, including our ability to innovate and achieve sustained high performance. This is a key part of our Values-Human, Bold, and Outstanding.

About the company

Herbert Smith Freehills Kramer is a world-leading global law firm, where our ambition is to help you achieve your goals.

Exceptional client service and the pursuit of excellence are at our core. We invest in and care about our client relationships, which is why so many are longstanding. We enjoy breaking new ground, as we have for over 170 years.

As a fully integrated transatlantic and transpacific firm, we are where you need us to be. Our footprint is extensive and committed across the world’s largest markets, key financial centres and major growth hubs.

At our best tackling complexity and navigating change, we work alongside you on demanding litigation, exacting regulatory work and complex public and private market transactions. We are recognised as leading in these areas.

We are immersed in the sectors and challenges that impact you. We are recognised as standing apart in energy, infrastructure and resources. And we’re focused on areas of growth that affect every business across the world.

All of this is achieved by supporting the growth of our people, who help us deliver on our ambition - which is to help you achieve yours.

Herbert Smith Freehills Kramer: Your goals. Our ambition

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