drjobs Software Engineer II - Machine Learning LLM

Software Engineer II - Machine Learning LLM

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1 Vacancy
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Job Location drjobs

Houston - USA

Monthly Salary drjobs

Not Disclosed

drjobs

Salary Not Disclosed

Vacancy

1 Vacancy

Job Description

Description

Youre ready to gain the skills and experience needed to grow within your role and advance your career and we have the perfect software engineering opportunity for you.

As a Software Engineer II at JPMorgan Chase within the Corporate Sector Technology Machine Learning team you are part of an agile team that works to enhance design and deliver the software components of the firms stateoftheart technology products in a secure stable and scalable way. As an emerging member of a software engineering team you execute software solutions through the design development and technical troubleshooting of multiple components within a technical product application or system while gaining the skills and experience needed to grow within your role.

JPMorgan Chase is dedicated to addressing complex business challenges through the application of data science and machine learning techniques across Risk Compliance Conduct and Operational Risk. As an Applied AI/ML Engineer on the team you will have the opportunity to explore intricate business problems and apply advanced algorithms to develop test and evaluate AI/ML applications or models for these challenges. You will leverage the firms extensive data resources from both internal and external sources using Python Spark and AWS among other systems. You are expected to extract business insights from technical results and effectively communicate them to a nontechnical audience.

Job responsibilities

  • Design and architect end to end solutions in AI domain ranging from Anomaly detection Use cases Chat with your at data and using GenAI.
  • Proactively develop an understanding of key business problems and processes.
  • Execute tasks throughout the model development process including data wrangling/analysis model training testing and selection.
  • Generate structured and meaningful insights from data analysis and modelling exercises and present them in an appropriate format according to the audience.
  • Collaborate with other data scientists and machine learning engineers to deploy machine learning solutions.
  • Conduct adhoc and periodic analysis as required by business stakeholders the model risk function and other groups.
  • Adds to team culture of diversity equity inclusion and respect
  • Applies knowledge of tools within the Software Development Life Cycle toolchain to improve the value realized by automation
  • Applies technical troubleshooting to break down solutions and solve technical problems of basic complexity
  • Learns and applies system processes methodologies and skills for the development of secure stable code and systems

Required qualifications capabilities and skills

  • Formal training or certification on software engineering concepts and 2 years applied experience postadvanced degree (MS PhD) in a quantitative field (e.g. Data Science Computer Science Applied Mathematics Statistics Econometrics).
  • Hands on experience in statistical inference and experimental design (such as probability linear algebra calculus).
  • Deep knowledge and experience in Data wrangling: understanding complex datasets cleaning reshaping and joining messy datasets using Python.
  • Practical expertise and work experience with ML projects both supervised and unsupervised.
  • Proficient programming skills with Python including libraries such as NumPy pandas and scikitlearn
  • Understanding and usage of the OpenAI API
  • Knowledge and understand in NLP: tokenization embeddings sentiment analysis basic transformers for textheavy datasets.
  • Experience with LLM & Prompt Engineering including tools like LangChain LangGraph and RetrievalAugmented Generation (RAG).
  • Experience in anomaly detection techniques algorithms and applications.

Preferred qualifications capabilities and skills

  • Experience with deep learning frameworks such as TensorFlow and PyTorch
  • Experience with big data frameworks with a preference for Databricks.
  • Experience with databases including SQL (Oracle Aurora) and Vector DB.
  • Experience working with engineering teams to operationalize machine learning models.


Employment Type

Full-Time

Company Industry

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