Jobs

Applied AIML Lead- Python & Data Science Engineering
GLASGOW, LANARKSHIRE, United Kingdom, GB
·
On-site
·
Full-time
·
1mo ago
If you are looking for a game-changing career, working for one of the world's leading financial institutions, you’ve come to the right place.
As an Applied AIML Engineer, you provide expertise and engineering excellence as an integral part of an agile team to enhance, build, and deliver trusted market-leading technology products in a secure, stable, and scalable way. Leverage your advanced technical capabilities and collaborate with colleagues across the organization to drive best-in-class outcomes across various technologies to support one or more of the firm’s portfolios.
Job responsibilities
- Co-Develop and implement LLM-based, machine learning models and algorithms to solve complex operational challenges.
- Design and deploy generative AI applications to automate and optimize business processes.
- Collaborate with stakeholders & Data Scientists to understand business needs and translate them into technical solutions.
- Analyze large datasets to extract actionable insights and drive data-driven decision-making.
- Ensure the scalability and reliability of AI/ML solutions in a production environment.
- Stay up-to-date with the latest advancements in AI/ML technologies & LLMs and integrate them into our operations.
- Mentor and guide junior team members in coding & SDLC standards, AI/ML best practices and methodologies.
Required qualifications, capabilities, and skills
- Master’s or Bachelors in Computer Science, Data Science, Machine Learning, or a related field, with a focus on engineering.
- Excellent API design and engineering experience with proven usage of API python frameworks Quart, Flask or FastAPI
- Proficiency in Python & async programming, with a strong emphasis on writing comprehensive test cases using testing frameworks such as pytest to ensure code quality and reliability
- Expertise with Index & Vector DBs such as Opensearch./Elastic Search
- Extensive experience in deploying AI/ML applications in a production environment, with skills in deploying models on AWS platforms such as Sage Maker or Bedrock.
- Champion of MLOps practices, encompassing the full cycle from design, experimentation, deployment, to monitoring and maintenance of machine learning models.
- Experience with generative AI models, including GANs, VAEs, or transformers. Experience with Diffusion models is a plus.
- Solid understanding of data preprocessing, prompt engineering, feature engineering, and model evaluation techniques.
- Proficiency in AI coding tools and editors such as Cursor, Windsurf or Co Pilot
- Familiarity in machine learning frameworks such as Tensor Flow, Py Torch, Py Torch Lightning, or Scikit-learn.
- Familiarity with cloud platforms (AWS) and containerization technologies (Docker, Kubernetes, Amazon EKS, ECS).
Preferred qualifications, capabilities, and skills- Expertise in cloud storage such as RDS and S3
- Excellent problem-solving skills and the ability to work independently and collaboratively.
- Strong communication skills to effectively convey complex technical concepts to non-technical stakeholders.
- Proven experience in leading projects and teams, with a track record of successful project delivery.
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About JPMorgan Chase

JPMorgan Chase
PublicJPMorgan Chase is a multinational investment bank and financial services company that provides banking, investment, and asset management services globally. It is one of the largest banks in the United States by assets and market capitalization.
300,000+
Employees
New York City
Headquarters
Reviews
4.2
10 reviews
Work Life Balance
4.2
Compensation
4.3
Culture
4.5
Career
4.4
Management
4.1
75%
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Pros
Good pay and benefits
Work-life balance
Career advancement opportunities
Cons
Heavy workload at times
Career advancement takes time
Pay could be better in some roles
Salary Ranges
47 data points
Junior/L3
Mid/L4
Senior/L5
Junior/L3 · Analyst
21 reports
$126,500
total / year
Base
$110,000
Stock
-
Bonus
-
$95,450
$155,250
Interview Experience
4 interviews
Difficulty
2.8
/ 5
Duration
14-28 weeks
Interview Process
1
Application Review
2
HireVue Video Interview
3
Technical/Behavioral Assessment
4
Final Interview Round
5
Offer Decision
Common Questions
Behavioral/STAR
Technical Knowledge
Past Experience
Culture Fit
Case Study
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