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Lead AI Applied ML Engineer

salary Salary :

$171,000 - 260,000 yearly

Job Description - Lead AI Applied ML Engineer

Description

We have an exciting and rewarding opportunity for you to take your software engineering career to the next level. We are building a next generation, AI-driven Global Financial Crimes Strategic Monitoring solutions that detects AML risk, regulatory violations, transactions risk, misconduct, and behavioral anomalies. 


As a Lead MLE on the team, you will design, build and productionize Risk typologies/ features, data pipelines, supervised and unsupervised ML models, and LLM risk explainability that operate at scale across high-volume banking transactions. You will be responsible for leading a team of 4 to 5 ML engineers. You will work at the intersection of Risk modeling, and NLP architectures, inference systems, regulatory explainability and auditability.  This is a hands-on senior role requiring deep expertise in ML operations, LLM integration, scalable ML systems and production grade engineering discipline. This role offers a chance to collaborate with product managers, architects, data science and operational teams, while also engaging in software engineering communities to explore new and emerging technologies.


 


Job responsibilities



  • Lead a small group of ML engineers

  • Lead and influence team with development and operational standards adherence

  • Design, build, collaborate, and operate ML models

  • Design, build and operate LLM solutions

  • Design and build feedback and accuracy measurement techniques for AI solutions

  • Design, build, and operate risk features data pipelines in Databricks

  • Conduct monitoring to detect and alert drift, bias and performance degradation

  • Work closely within a cross-functional team following agile based processes

  • Collaborate closely with Product Managers, SRE and Compliance SMEs to continuously improve product adoption, reliability and outcomes


 


Required qualifications, capabilities, and skills



  • 8+ years experience in cloud based applications with 4+ years of experience as an MLE

  • Strong foundation in Information Retrieval, Natural Language Processing and 

  • Expert in functional programming and JVM based languages- Python, Java

  • Experience integrating models into cloud scale, microservices based architectures

  • Experience with one or more ML frameworks - Pytorch, Tensorflow, SciKit, NeMo, Huggingface Transformers

  • Hands-on experience with AWS services, and Databricks

  • Experience/Exposure to SQL, NoSQL and messaging stacks

  • Excellent verbal & written communication skills and bias for action and ownership in early stage env

  • Operational experience in supporting an enterprise grade ML application in production


 


Preferred qualifications, capabilities, and skills



  • Knowledge of Firm Databricks CDAO platform is good to have

  • Experience with building production-grade ML pipelines, APIs and MLOps frameworks

  • Experience in AML, monitoring and investigations systems is a strong plus

  • Good understanding of data engineering concepts, distributed systems, and scalable architectures

  • Familiarity with vector databases, model serving, and inference optimization is a plus



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