Applied AI ML - Senior Associate - Machine Learning Engineer
LONDON, LONDON, United Kingdom
- Pay
- Salary not listed in the saved posting
- Work setup
- Unconfirmed
- Employment
- Unconfirmed
Education & alternatives
Required qualifications, capabilities, and skills - Masters or PhD in a quantitative discipline, e.g. Computer Science, Mathematics, Statistics - Solid understanding of fundamentals of statistics, optimization and ML theory. Familiarity with popular deep learning architectures (transformers, CNN, autoencoders etc.)
Tools in this posting
- Python
- AWS
- Azure
- Kubernetes
- PyTorch
- Google Cloud (GCP)
- Docker
- pandas
Source — Tool mentions in context
- Experience monitoring, maintaining, enhancing existing models over an extended time period - Extensive experience with pytorch and related data science python libraries (e.g. pandas) - Experience of containerising applications or models for deployment (Docker)
- Experience of containerising applications or models for deployment (Docker) - Experience with one of the major public cloud providers (Azure, AWS, GCP) - Ability to communicate technical information and ideas at all levels; convey information clearly and create trust with stakeholders.
- Have constructed batch and streaming microservices exposed as REST/gRPC endpoints - Experience with container orchestration tools (e.g. Kubernetes, Helm) - Knowledge of open source datasets and benchmarks in NLP
- Extensive experience with pytorch and related data science python libraries (e.g. pandas) - Experience of containerising applications or models for deployment (Docker) - Experience with one of the major public cloud providers (Azure, AWS, GCP)
Job description
Join a high performing team of applied AI experts to drive innovation and new capabilities in the Commercial & Investment Bank.
As an Applied AI / ML Senior Associate Machine Learning Engineer in the Applied AI ML team at JPMorgan Commercial & Investment Bank, you will be at the forefront of combining cutting-edge AI techniques with the company's unique data assets to optimize business decisions and automate processes. You will have the opportunity to advance the state-of-the-art in AI as applied to financial services, leveraging the latest research from fields of Natural Language Processing, Computer Vision, and statistical machine learning. You will be instrumental in building products that automate processes, help experts prioritize their time, and make better decisions. We have a growing portfolio of AI–powered products and services and increasing opportunity for re-use of foundational components through careful design of libraries and services to be leveraged across the team. This role offers a unique blend of scientific research and software engineering, requiring a deep understanding of both mindsets.
Job responsibilities
- Build robust Data Science capabilities which can be scaled across multiple business use cases
- Collaborate with software engineering team to design and deploy Machine Learning services that can be integrated with strategic systems
- Research and analyse data sets using a variety of statistical and machine learning techniques
- Communicate AI capabilities and results to both technical and non-technical audiences
- Document approaches taken, techniques used and processes followed to comply with industry regulation
- Collaborate closely with cloud and SRE teams while taking a leading role in the design and delivery of the production architectures for our solutions.
- Act as an individual contributor, though there will be optional opportunity for management responsibility dependent on the candidate’s experience.
Required qualifications, capabilities, and skills
- Masters or PhD in a quantitative discipline, e.g. Computer Science, Mathematics, Statistics
- Solid understanding of fundamentals of statistics, optimization and ML theory. Familiarity with popular deep learning architectures (transformers, CNN, autoencoders etc.)
- Specialism or well-researched interest in NLP
- Broad knowledge of MLOps tooling – for versioning, reproducibility, observability etc.
- Experience monitoring, maintaining, enhancing existing models over an extended time period
- Extensive experience with pytorch and related data science python libraries (e.g. pandas)
- Experience of containerising applications or models for deployment (Docker)
- Experience with one of the major public cloud providers (Azure, AWS, GCP)
- Ability to communicate technical information and ideas at all levels; convey information clearly and create trust with stakeholders.
Preferred qualifications, capabilities, and skills
- Experience designing/ implementing pipelines using DAGs (e.g. Kubeflow, DVC, Ray)
- Experience of big data technologies
- Have constructed batch and streaming microservices exposed as REST/gRPC endpoints
- Experience with container orchestration tools (e.g. Kubernetes, Helm)
- Knowledge of open source datasets and benchmarks in NLP
- Hands-on experience in implementing distributed/multi-threaded/scalable applications
- Track record of developing, deploying business critical machine learning models
#CIBAppliedAI
Your next step
- Have your CV and examples of relevant work ready.
- Check the listed location, eligibility and core experience before starting.
- Ask the employer about the salary range before committing time to the process.
Complete your application on jpmc.fa.oraclecloud.com. The employer’s form will show what is required.
Already applied? Track this application
Source & posting history
Source notes
Source excerptsSelected passages from the saved posting. Check the full description for conditions and exceptions.
- Pay
No pay amount identified in the saved description.
- Location & working pattern
LONDON, LONDON, United Kingdom
Working pattern and location restrictions need checking in the full posting.
- Work authorization
No clear work-authorization passage found. Eligibility is unconfirmed.
- Status in our records
- Active
- First seen by us
- May 1, 2026
- Recorded sightings
- 108
- Last seen by us
- Oct 9, 2026
- Employer says posted
- Apr 24, 2026
These dates show when we found the listing. Check the employer’s website to confirm it is still accepting applications.
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