Quantitative Developer
Job in
McLean, Fairfax County, Virginia, USA
Listing for:
Aktra
Full Time
position
Listed on 2025-12-13
Job specializations:
-
IT/Tech
AI Engineer, Data Engineer, Cloud Computing, Machine Learning/ ML Engineer
Salary/Wage Range or Industry Benchmark: 200000 - 250000 USD Yearly
USD
200000.00
250000.00
YEAR
Job Description & How to Apply Below
We are seeking a highly skilled AI Engineer with strong expertise in machine learning operations (ML Ops), cloud engineering, and large-scale data systems to support enterprise AI initiatives. This role is engineering-focused, emphasizing infrastructure, automation, and integration rather than model development. The ideal candidate has experience with end-to-end ML model lifecycle management, scalable system architecture, and enterprise AI applications in a cloud environment.
Key Responsibilities:
ML Ops & Infrastructure: Design, implement, and maintain scalable, cloud-based ML pipelines using AWS (Sage Maker, Unified Studio, Mayflower or equivalents) for model deployment, monitoring, and automation.Big Data & Cloud Engineering: Build and optimize high-performance data pipelines and distributed computing solutions for processing large-scale datasets.Enterprise AI Systems: Develop and integrate AI-driven solutions into enterprise-grade financial applications (CCFA apps), ensuring compliance with common standards, security, and best practices.Software Development: Write production-ready code in Python, C++, and other relevant languages to support AI system implementation and infrastructure scaling.Database & Performance Optimization: Work with SQL, No
SQL, and large-scale database systems to ensure efficient data retrieval, transformation, and storage for AI applications.Collaboration & Architecture: Partner with data engineers, cloud architects, and quant engineers to develop and maintain robust AI-driven workflows in a cloud-based, enterprise environment.Model Lineage & Governance: Implement ML model lifecycle tracking, data lineage, and governance frameworks to ensure AI system transparency and compliance.Qualifications:
5+ years of experience in software engineering, cloud infrastructure, or ML Ops.Strong programming skills in Python, C++, SQL, and experience with cloud-based AI services (AWS Sage Maker, Mayflower, Unified Studio, etc.).Deep understanding of ML Ops, model lifecycle management, and AI deployment strategies.Experience working with large-scale, enterprise applications, preferably in financial services.Familiarity with big data processing frameworks (Spark, Kafka, or similar) and cloud-based AI/ML pipelines.Strong problem-solving skills and ability to work with cross-functional teams in a fast-paced environment.This role is ideal for an experienced engineer who understands AI/ML workflows but focuses on infrastructure, deployment, and scaling rather than developing new ML models. If you are passionate about AI-driven engineering, cloud automation, and enterprise-grade AI solutions, we encourage you to apply.
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