Tech Lead Manager, Agentic Runtime

Glean

$250K — $300K *
Information Technology
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • 8+ years of software engineering experience with production distributed systems or cloud-native applications.
  • 1+ years of engineering management experience.
  • BS/BA in Computer Science or related field, or equivalent practical experience.
  • Strong coding skills in Python, Go, Java, or C++ with an emphasis on reliability and performance.
  • Experience with operating services on Kubernetes and at least one major cloud platform (GCP, AWS, Azure).
  • Familiarity with event/streaming systems like Pub/Sub or Kafka, caching systems like Redis, and data stores for low-latency paths.
  • Practical understanding of LLM/agents building blocks, including tool/function calling and model routing.

Responsibilities

  • Own runtime problems from architecture to production launch and reliability.
  • Build core services for session lifecycle and structured tool execution.
  • Optimize performance, correctness, and cost-effectiveness in service design.
  • Integrate with leading LLM providers to enhance quality and predictability.
  • Enhance platform reliability through fault isolation and graceful degradation techniques.
  • Create observability frameworks and playbooks for maintaining high availability.
  • Work closely with various teams to prioritize impactful project investments.

Benefits

  • Comprehensive medical, vision, and dental coverage.
  • Generous time-off policy.
  • 401k plan with contribution opportunities.
  • Home office improvement stipend.
  • Annual education and wellness stipends.
  • Regular company culture events and healthy daily lunches.
Full Job Description
About the Role:

The Tech Lead Manager of the Agentic Runtime team builds the low-latency, reliable, and secure foundation that powers Glean's AI agents and assistant experiences at scale. You'll design and operate core runtime services for multi-turn orchestration, tool calling, model routing, memory, streaming, and safety. You'll work across distributed systems, production observability, and ML infra integrations to deliver an experience that feels instant, accurate, and trustworthy - while optimizing cost and reliability.

You will:
  • Own impactful runtime problems end-to-end - from architecture and design to production launch and ongoing reliability.
  • Build and evolve core services for session lifecycle, streaming responses (e.g., gRPC/WebSockets), structured tool execution, memory/state, and policy/guardrails.
  • Design for performance, correctness, and cost: reduce p50/p95 latency, improve tail behavior, and optimize token/tool budgets.
  • Integrate with leading LLM providers (e.g., OpenAI, Anthropic, Google Gemini) and internal evaluation frameworks to improve quality and predictability.
  • Harden the platform with fault isolation, retries, timeouts, circuit-breaking, backpressure, and graceful degradation.
  • Instrument deep observability (tracing, metrics, logs) and create playbooks/SLOs for high availability and on-call excellence.
  • Collaborate closely with product, quality, and application teams to prioritize the most impactful roadmap investments.

About you:
  • 8+ years of software engineering experience building production distributed systems or cloud-native applications.
  • 1+ years of engineering management experience
  • BS/BA in Computer Science or related field, or equivalent practical experience.
  • Strong coding skills in at least one of: Python, Go, Java, or C++, with a focus on reliability, performance, and tests.
  • Product-minded: you prioritize customer impact, clear SLAs/SLOs, and pragmatic iteration.
  • Ownership-driven with a positive, proactive attitude; comfortable leading projects or learning from battle-tested engineers.
  • Experience operating services on Kubernetes and at least one major cloud (e.g., GCP, AWS, or Azure).
  • Familiarity with event/streaming systems (e.g., Pub/Sub, Kafka), caching (e.g., Redis), and data stores for low-latency paths.
  • Practical understanding of LLM/agents building blocks: tool/function calling, structured outputs, streaming, and model selection/routing.
  • Strong observability and debugging skills: tracing (e.g., OpenTelemetry), metrics, dashboards, and production forensics.
  • Background in one or more areas is a plus: policy/guardrails, multi-tenant isolation, rate-limiting, concurrency control, cost optimization.

Location:
  • This role is hybrid (4 days a week in either our Mountain View or San Francisco offices)

Compensation & Benefits:

The standard base salary range for this position is $250,000 - $300,000 annually. Compensation offered will be determined by factors such as location, level, job-related knowledge, skills, and experience. Certain roles may be eligible for variable compensation, equity, and benefits.

We offer a comprehensive benefits package including competitive compensation, Medical, Vision, and Dental coverage, generous time-off policy, and the opportunity to contribute to your 401k plan to support your long-term goals. When you join, you'll receive a home office improvement stipend, as well as an annual education and wellness stipends to support your growth and wellbeing. We foster a vibrant company culture through regular events, and provide healthy lunches daily to keep you fueled and focused.

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AI-First Mindset at Glean:

At Glean, AI fluency is core to how we work and we're committed to ensuring every new hire feels confident integrating AI into their everyday work. As part of the interview process, you'll complete a brief AI-focused exercise or discussion so we can understand how you think about, design, and use AI to drive impact in your role. Feel free to reference any tools, platforms, or workflows you use today - prior Glean experience isn't required.

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