JP Morgan Chase & Co.

Principal Software Engineer - LLM Optimization

JP Morgan Chase & Co.$160K — $200K *
Enterprise Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 7+ years of applied software engineering experience with formal training or certification.
  • Hands-on expertise with LLM inference systems like vLLM and TensorRT-LLM.
  • In-depth knowledge of GPU memory architecture and dynamics.
  • Experience with quantization techniques and their tradeoffs in production.
  • Familiar with speculative decoding principles and acceptance rates in workloads.
  • Strong benchmarking skills with a focus on data-driven decision making.
  • Proficient in cloud GPU infrastructure, particularly AWS and EKS.
  • Awareness of the LLM inference competitive landscape and effective communication skills with senior stakeholders.

Responsibilities

  • Own performance benchmarking and systematic evaluation of production LLM workloads.
  • Design and execute quantization experiments to measure accuracy and efficiency.
  • Drive speculative decoding strategy and manage acceptance rates across models.
  • Maintain a GPU efficiency scorecard for leadership visibility on platform performance.
  • Benchmark platform efficiency against external standards and industry metrics.
  • Evaluate inference engine upgrades through systematic validation processes.
  • Collaborate on optimization strategies for multi-node serving architectures.

Benefits

  • High-visibility role impacting the firm's AI capabilities directly.
  • Opportunity to shape technical direction with senior engineering leadership.
  • Work with cutting-edge technologies in AI and machine learning.
  • Engagement in a fast-paced, innovative team environment.
Full Job Description
JOB DESCRIPTION

As a Principal Software Engineer at JPMorganChase within the AI/ML Data Platform team, you will serve as the firm's deepest technical voice on LLM inference performance — owning optimization strategy, benchmarking rigor, and efficiency at scale. You will work directly with senior engineering leadership to shape how our platform evolves, ensuring every model we serve is fast, cost-efficient, and production-ready. This is a high-visibility individual contributor role where your technical decisions will have direct, measurable impact on the firm's AI capabilities

Job Responsibilities

 

  • Own systematic benchmarking and performance characterization across all production LLM workloads. Establish reproducible baselines, catch regressions early, and quantify the impact of every configuration change before it touches production

  • Design and execute quantization experiments — FP8, INT8/INT4 (GPTQ/AWQ), next-generation precision formats on current hardware — measuring accuracy delta, throughput improvement, memory reduction, and cost-per-token impact

  • Drive speculative decoding strategy across the model portfolio: draft model, n-gram, and multi-token prediction approaches. Own acceptance rate measurement and per-workload configuration recommendations

  • Build and maintain a GPU efficiency scorecard: utilization, memory headroom, cost per 1K tokens, and waste identified — giving leadership a data-driven view of platform efficiency at all times

  • Benchmark our platform against external providers and published industry numbers — know what good looks like, and close the gap

  • Lead inference engine upgrade evaluations: new scheduler architectures, async tensor parallelism, disaggregated prefill/decode, advanced speculative decoding — systematic validation before production promotion

  • Collaborate with the EKS and disaggregated serving teams on KV-cache optimization, prefix caching strategies, and multi-node serving architecture

  • Design and run GPU chaos engineering: induced failure scenarios, hardware diagnostic monitoring, detection and recovery measurement

  • Architect and govern agentic AI-enabled engineering workflows (using enterprise-authorized tools within the work environment) to improve delivery speed, code quality, and operational outcomes at scale (e.g., AI-driven PR review assistance, test generation/maintenance, release readiness checks, incident triage and root-cause acceleration), while defining guardrails for validation, security, resiliency, and reuse across teams. 

  • Apply knowledge of tools within the Software Development Life Cycle toolchain, including enterprise-authorized AI-assisted development and automation capabilities, to improve the value realized by automation at scale. 

 

Required qualifications, capabilities, and skills

 

  • Formal training or certification on software engineering concepts and 7+ years applied experience 

  • Deep, hands-on experience with LLM inference systems — vLLM, TensorRT-LLM, SGLang, LLM-D or equivalent production serving engines

  • Strong grasp of GPU memory architecture: KV cache sizing and dynamics, memory-bandwidth vs compute bottlenecks, the practical implications of quantization at inference time

  • Experience with quantization techniques and their real-world tradeoffs at scale

  • Familiarity with speculative decoding and the variables that drive acceptance rates in production workloads

  • Rigorous benchmarking instincts — GuideLLM, custom harnesses, or equivalent. Every claim has a number behind it

  • Comfort operating in cloud GPU infrastructure at scale (AWS; EKS, managed inference services)

  • Demonstrated awareness of the LLM inference competitive landscape, with a track record of applying industry benchmarks to drive platform improvements communicate technical trade-offs clearly to senior engineering and business stakeholders — this role presents upward regularly

  • Demonstrated experience designing and leading adoption of agentic AI-enabled development practices (using enterprise-authorized tools within the work environment) across teams, including setting standards for human-in-the-loop validation, auditability/traceability of changes, and secure handling of sensitive data. 

  • Strong understanding of responsible AI use and control expectations in engineering workflows, including security/resiliency implications, data sensitivity, and risk-based governance; ability to influence senior technical leaders on safe scaling patterns and reuse.

 

 Preferred qualifications, capabilities, and skills

 

  • Experience with disaggregated prefill/decode serving architectures, GPU hardware diagnostics (DCGM/NVML/XID event tracking), ML observability and production monitoring

 

About JP Morgan Chase & Co.

JP Morgan Chase & Co. stands at the forefront of the global financial services industry. They offer an expansive array of products and services to a diverse clientele, including individuals, corporations, governments, and institutions. Ever since the merger of J.P. Morgan & Co. and Chase Manhattan Corporation in 2000, this industry-leading entity has become renowned for its comprehensive portfolio encompassing consumer and community banking, corporate and investment banking, commercial banking, as well as asset and wealth management. Headquartered in the vibrant city of New York, JP Morgan Chase & Co. boasts a formidable presence across over 100 countries worldwide.

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JP Morgan Chase & Co. is continuously on the lookout for talented individuals eager to contribute to its legacy of excellence. The company's recruitment efforts are geared towards identifying candidates with the right blend of skills and qualifications to drive forward its various business segments. Whether you are a seasoned professional or a recent graduate, JP Morgan Chase offers a plethora of job openings across multiple disciplines.

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Learn more about JP Morgan Chase & Co.
Size
661 employees
Market Cap
$384.5 billion
Industry
Net Income
$29.1 billion
Founded
1823
5 Year Trend
+0.7%
Revenue
$261.5 million
NASDAQ

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