Talentmate
India
25th September 2026
2609-59735-176
Purpose of the role
To implement data quality process and procedures, ensuring that data is reliable and trustworthy, then extract actionable insights from it to help the organisation improve its operation, and optimise resources.
Accountabilities
Assistant Vice President Expectations
All colleagues will be expected to demonstrate the Barclays Values of Respect, Integrity, Service, Excellence and Stewardship – our moral compass, helping us do what we believe is right. They will also be expected to demonstrate the Barclays Mindset – to Empower, Challenge and Drive – the operating manual for how we behave.
Embark on a transformative journey as ML Operations Engineer at Barclays, where you will play a pivotal role to manage operations within a business area and maintain processes with risk management initiatives. You will take ownership of your work and provide first-class support to our clients with expertise and care.
Purpose of the role:
To design, implement, and maintain robust MLOps frameworks that streamline the deployment, monitoring, and lifecycle management of AI and Generative AI models, ensuring efficient and reliable production operations on AWS.
Responsibilities of the role:
Build and optimize scalable, secure, and cost-effective AWS-based infrastructure for ML/GenAI workloads
Develop automated workflows for data ingestion, model training, testing, deployment, and monitoring using tools like AWS SageMaker, Step Functions, and Lambda
Implement data quality checks, lineage tracking, and compliance standards for curated datasets
Integrate ML pipelines with DevOps practices, ensuring seamless collaboration between data science and engineering teams
Deploy monitoring solutions for model performance, drift detection, and system health using AWS CloudWatch and custom dashboards
Ensure adherence to security best practices and governance requirements for AI deployments
Work closely with Data Scientists to operationalize models and optimize deployment strategies
Technical skills required for this role include:
Experience in Programming & Automation: Python, Bash, SQL.
Worked in MLOps Tools: MLflow, Kubeflow, AWS SageMaker Pipelines.
Cloud Platforms: AWS (SageMaker, Bedrock, Lambda, Step Functions, CloudWatch)
DevOps: CI/CD (GitHub Actions, Jenkins), Docker, Kubernetes
Data Management: Data curation, governance, and ETL processes.
The ML Ops Engineer role focuses on building and managing automated pipelines, AWS-based architectures, and monitoring frameworks to enable efficient deployment and lifecycle management of AI and Generative AI models in production environments.
This role requires a flexible working approach, ensuring availability during select hours that overlap with US-based partners and stakeholders.
You may be assessed on key essential skills relevant to succeed in role, such as risk and controls, change and transformation, business acumen, strategic thinking and digital and technology, as well as job-specific technical skills.
This role is based out of Noida.
| Role Level: | Mid-Level | Work Type: | Full-Time |
|---|---|---|---|
| Country: | India | City: | Noida ,Uttar Pradesh |
| Company Website: | http://www.barclayscorporate.com | Job Function: | DevOps & QA |
| Company Industry/ Sector: |
Banking | ||
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