AI Automation Engineer Associate
JP Morgan Services India Pvt LtdJob Description
AI Automation Engineer Associate
Make your mark by building reliable AI automation that improves accuracy, reduces manual effort, and grows your engineering impact.
As a Senior Associate in Operations Automation within the Commercial and Investment Bank, you design, build, deploy, and operate production-grade AI assistants that automate high-volume knowledge work. You focus on intelligent document processing by transforming unstructured inputs (such as PDFs, spreadsheets, emails, and images) into structured, validated data for downstream business systems. You define success metrics and continuously improve quality through offline evaluation and production monitoring while embedding Responsible AI controls and troubleshooting issues across the full solution stack.
Job Responsibilities:
- Design production-grade AI assistants that combine language models, multimodal models, business rules, retrieval, and tool integrations to automate operational workflows.
- Engineer multi-stage workflows using directed-graph or graph-based orchestration patterns, including ingestion, model execution, tool invocation, validation, and post-processing.
- Apply fit-for-purpose techniques across structured model outputs, retrieval-augmented generation, agentic patterns, and multimodal document processing.
- Define output schemas (for example, Pydantic), prompts, deterministic post-processing rules, validation logic, and exception handling aligned to domain needs.
- Build document digitization and Optical Character Recognition pipelines, including PDF text extraction, OCR processing, normalization, and handling of noisy or low-quality scans.
- Establish success metrics and improve accuracy and reliability through offline evaluation (golden datasets, regression tests, error analysis) and production monitoring (quality, drift, latency, cost).
- Write secure, maintainable, well-tested production code and develop reusable components that can be leveraged across use cases.
- Troubleshoot production issues across model, retrieval, tool-integration, and post-processing layers, driving root-cause analysis and preventative fixes.
- Embed Responsible AI practices, guardrails, and governance controls into delivery and operations to support auditability, traceability, and well-controlled execution.
- Produce recurring health views and reporting for key performance indicators such as adoption, accuracy, and override or exception rates to support stakeholders.
- Facilitate requirements elicitation with operations users through workshops, process walkthroughs, and shadowing, translating needs into requirements, controls, and acceptance criteria.
Required qualifications, skills, and capabilities:
- Demonstrate at least 5 years of hands-on experience in applied AI, machine learning, or AI-powered automation, including delivery of production or production-like solutions.
- Show strong proficiency in Python, including asynchronous programming, to build clean, maintainable, well-tested code.
- Apply Large Language Model techniques, including prompt engineering, structured or JSON-schema outputs, and robustness methods for real-world tasks.
- Use LangGraph or an equivalent graph-based orchestration framework to build multi-step AI workflows.
- Define and validate schemas using Pydantic and perform data processing using pandas.
- Implement Optical Character Recognition and document digitization workflows, including PDF text extraction, OCR tools such as AWS Textract or equivalent, post-OCR cleanup, validation, and exception handling.
- Integrate external tools and services via application programming interfaces, including tool-using assistant patterns with strong validation and error handling.
- Follow core software engineering practices, including automated testing, continuous integration and continuous delivery, secure development, and production readiness (logging, metrics, tracing, runbooks, incident response participation).
- Use Git and a hosted repository platform to manage branching, pull requests, and code review workflows.
- Define objective success metrics and evaluate solution quality with clear problem framing and effective communication across technical and non-technical stakeholders.
- Analyze adoption and performance drivers (such as accuracy and override patterns) using structured root-cause analysis and measurable remediation.
Preferred qualifications, skills, and capabilities:
- Developing experience using AI-powered analytics, workflow automation, or intelligent process tools to drive efficiency gains, reduce manual effort, or improve accuracy in operational processes.
- Hold a Master’s degree with a specialization in AI or machine learning, or a closely related quantitative field.
- Deliver enterprise Large Language Model-powered or agentic applications with accountability for service health, including service level objectives, reliability, and operational excellence.
- Apply retrieval-augmented generation components, including embeddings, vector stores, retrieval quality evaluation, grounding approaches, and hallucination mitigation.
- Interpret evaluation and statistical concepts such as confusion matrix, precision, recall, F1, error analysis, A/B testing, and statistical significance to measure and defend model performance.
- Use classical machine learning frameworks such as PyTorch, TensorFlow, or scikit-learn as needed.
- Deploy solutions as scalable, observable backend services or application programming interfaces, including familiarity with containerization and cloud-native deployment.
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