Sr Lead Software Engineer - Cloud / ML / GenAI
Company: JPMorganChase
Location: Plano
Posted on: April 1, 2026
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Job Description:
Description Be an integral part of an agile team that's
constantly pushing the envelope to enhance, build, and deliver
top-notch technology products. As a Senior Lead Software Engineer
at JPMorgan Chase within the Enterprise Technology - Public Cloud
Engineering team, you are an integral part of an agile team that
works to enhance, build, and deliver trusted market-leading
technology products in a secure, stable, and scalable way. Drive
significant business impact through your capabilities and
contributions, and apply deep technical expertise and
problem-solving methodologies to tackle a diverse array of
challenges that span multiple technologies and applications. As a
Senior Machine Learning and Generative AI Engineer in Public Cloud
Engineering, you will lead hands-on architecture, development, and
production deployment of ML and LLM-powered solutions. You’ll apply
strong engineering practices, rigorous experimentation, and
responsible AI methods to deliver high-impact capabilities for our
businesses, partnering across a global, multidisciplinary team. Job
responsibilities Design and implement end-to-end ML and LLM
solutions, from problem framing and data preparation through
training, evaluation, deployment, and ongoing optimization. Apply
modern GenAI workflows, including prompt engineering techniques,
tracing, evaluations, guardrails, and safety frameworks to align
model behavior with business objectives and risk controls.
Productionize high-quality models and pipelines on public clouds,
leveraging Kubernetes for container orchestration where
appropriate. Establish robust offline and online evaluation
methodologies, including intrinsic and extrinsic metrics (e.g.,
relevance, safety, latency, cost efficiency), and integrate
automated testing/monitoring. Collaborate closely with product,
platform, security, controls, and business stakeholders across a
geographically distributed organization; provide technical
mentorship and code reviews. Document solution designs and
decisions; contribute to reusable components, patterns, and best
practices for ML/GenAI in public cloud environments. Optimize for
cost, performance, and resilience; incorporate data privacy,
compliance, and responsible AI considerations throughout the
lifecycle. Required qualifications, capabilities, and skills Formal
training or certification on software engineering concepts and 5
years applied experience MS or PhD in Computer Science, Data
Science, Statistics, Mathematical Sciences, or Machine Learning;
strong background in mathematics and statistics. Extensive
expertise applying data science and ML to business problems with
strong programming in Python and/or Java. Hands-on experience with
GenAI/LLMs (e.g., GPT, Claude, Llama or similar), including prompt
engineering, tracing, evaluations, and guardrails. Solid background
in NLP and Generative AI; strong understanding of ML and deep
learning methods and large language models. Extensive experience
with ML/DL toolkits and libraries (e.g., Transformers, Hugging
Face, TensorFlow, PyTorch, NumPy, scikit-learn, pandas).
Demonstrated leadership in proposing and delivering AI/ML and GenAI
solutions; ability to drive technical direction and influence
stakeholders. Experience designing experiments, training
frameworks, and metrics aligned to business goals. Expertise with
at least one major public cloud (AWS, GCP, or Azure) and with
containerization/orchestration (Docker/Kubernetes). Strong
grounding in data structures, algorithms, ML, data mining,
information retrieval, and statistics. Excellent communication
skills, with the ability to engage senior technical and business
partners. Preferred qualifications, capabilities, and skills Depth
in one or more: Natural Language Processing, Reinforcement
Learning, Ranking/Recommendation, or Time Series Analysis.
Additional familiarity with ML frameworks (e.g., PyTorch, Keras,
MXNet, scikit-learn). Understanding of financial services or wealth
management domains. Desirable: Contributions to open-source ML/LLM
tooling; certifications in AWS, Azure, GCP, or Kubernetes.
Keywords: JPMorganChase, Arlington , Sr Lead Software Engineer - Cloud / ML / GenAI, IT / Software / Systems , Plano, Texas