Senior Staff Engineer - AI ADC

A10 Networks, Inc.$180K — $195K *
Enterprise Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Advanced degree in Computer Science, Networking, or related field (MS/PhD preferred).
  • Deep knowledge of L4-L7 protocols and load balancing methods.
  • Strong programming skills in C/C++ and Go/Python, with expertise in performance profiling.
  • Experience with applied machine learning techniques and frameworks like PyTorch/TensorFlow.
  • Hands-on experience with AI/ML systems and understanding AI workload routing challenges.
  • Proven architectural and design skills to lead technical initiatives.
  • Ability to influence cross-functional teams and drive consensus.

Responsibilities

  • Lead architecture and development of AI Gateway components for intelligent traffic routing.
  • Design and implement LLM-aware load balancing for enhanced traffic decisions.
  • Develop enhancements for ADC and GSLB platforms tailored to AI workloads.
  • Contribute to advanced features like layer-8 context-aware routing and anomaly detection.
  • Drive system-wide architecture encompassing data plane and control plane management.
  • Mentor engineering teams on AI workload behaviors and tuning strategies.
  • Collaborate with AI research and platform teams to align architectures with product roadmaps.

Benefits

  • Hybrid working model.
  • Opportunities for professional growth in cutting-edge AI technology.
  • Mentorship from senior leadership and access to industry experts.
  • Emphasis on high standards for reliability, security, and cloud-native deployment.
Full Job Description
Senior Staff Engineer - AI ADC
A10 Networks is accelerating its AI-driven innovation across the ADC and GSLB product lines. We are seeking a highly experienced Sr. Staff Engineer to be part of the development of next-generation AI-aware traffic management and AI Gateway capabilities.

This role combines deep domain expertise in Application Delivery Controllers (ADC), Server Load Balancing (SLB), DNS/GSLB, with practical experience in AI/LLM systems, to build intelligent routing, inference-aware load balancing, and Layer-8 contextual decision engines for AI workloads.

The ideal candidate is a senior staff engineer who can drive architecture, design, prototyping, and execution-working closely with product management, platform teams, and AI strategy groups.

Key Responsibilities
  • Lead architecture and development of AI Gateway components for intelligent routing of LLM/AI application traffic.
  • Design and implement LLM-aware load balancing, incorporating semantic, token, latency, and model-level insights into traffic decisions.
  • Develop enhancements for ADC and GSLB platforms to support AI workloads, including:
    • Token-aware rate limiting
    • Inference latency-based routing
    • AI model endpoint discovery and health checks
    • Integration with vector databases, model registries, and ML observability systems
  • Contribute to advanced features including Layer-8 context-aware routing, adaptive traffic shaping, and AI-driven anomaly detection.
  • Drive system-wide architecture: data plane, control plane, configuration, and distributed state management.
  • Mentor engineering teams on AI workload behaviors, traffic characteristics, and tuning strategies.
  • Collaborate with AI research and platform teams to align architectural decisions with product roadmap.
  • Create guidance on performance optimization, benchmarking, and scaling for global multi-node deployments.
  • Ensure high standards for reliability, security, observability, and cloud-native deployment models.


Required Qualifications
  • Advanced degree in Computer Science, Networking, or related field (MS/PhD preferred).
  • Deep knowledge of L4-L7 protocols (TCP/TLS/HTTP/2/3, QUIC), load balancing algorithms and GSLB strategies (DNS-based, HTTP redirect, anycast).
  • Strong programming skills in C/C++ (data plane), Go/Python (control/ML), and performance profiling (perf, eBPF, flamegraphs, VTune/nvprof).
  • Applied ML: anomaly detection, time-series forecasting, classification; experience with PyTorch/TensorFlow.
  • Hands-on experience with AI/ML systems, including:
    • Model inference pipelines, LLM API integrations
    • Token-level behavior and performance characteristics
    • Understanding of AI workload routing challenges (latency, caching, batching, multi-model orchestration)
  • Strong architectural and design skills; able to lead complex technical initiatives end-to-end.
  • Demonstrated ability to influence cross-functional teams and drive consensus.


Key Attributes
  • Passion for emerging AI technologies and applying them within network infrastructure.
  • Deep systems thinking and ability to design for performance, scale, and robustness.
  • Strong ownership mindset with ability to deliver impactful architectural outcomes.
  • Excellent communication and collaboration skills


#LI-AN1 - Hybrid

Targeted compensation guideline: $180,000 - $195,000. Compensation will vary based on number of factors, including market demand for specific skills, role type, job level, and individual qualifications. Final salary offers are determined by considerations including, but not limited to, subject matter expertise, demonstrated skill level, relevant experience, geographic location, education, certifications, and training.

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