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Egen is a fast-growing and entrepreneurial company with a data-first mindset. We bring together the best engineering talent working with the most advanced technology platforms, including Google Cloud and Salesforce, to help clients drive action and impact through data and insights. We are committed to being a place where the best people choose to work so they can apply their engineering and technology expertise to envision what is next for how data and platforms can change the world for the better. We are dedicated to learning, thrive on solving tough problems, and continually innovate to achieve fast, effective results. If this describes you, we want you on our team.
About the opportunity:
As a ML Architecht, you set the technical direction for our most complex Generative AI work — and you are personally hands-on building it. We treat AI as a software engineering discipline, and you are the person who raises that bar: architecting systems that survive contact with production, and elevating the engineers around you to do the same.
You own the hardest problems in our portfolio — agentic platforms operating at scale, applied-ML work, and AI in regulated, high-stakes environments where being wrong is expensive. Document intelligence and RAG pipelines are part of the toolkit, not the ceiling. You take these systems from an ambiguous business problem to a robust, scalable production service, solving for the real-world constraints — latency, reliability, cost, governance — that separate a demo from a system a client can bet on.
You are also the technical face of our engagements. You partner directly with client leadership to translate business strategy into AI architecture, shape solutions in pre-sales, and earn the trust that turns a project into a program. This role blends deep, current mastery of LLMs and ML with the judgment, communication, and consultative instinct of a senior technical leader.
What You Will Do:
Your Technical Toolkit:
Basic Qualifications:
Personal Attributes:
Job ID: 152152417
Skills:
Microservices, Deep Learning, Tensorflow, Nlp, Pytorch, Docker, Python, AWS, Apis, Azure ML, Computer Vision, Kubernetes, Airflow, MLflow, Kubeflow, MLOps tools, data engineering pipelines, generative AI, GCP AI, Scikit-learn, cloud platforms, large-scale systems, SageMaker, scalable system design, AI ML system design and architecture
Skills:
data engineering , Machine Learning, MLops, Python, Sql, Deep Learning
Skills:
Java, Google Cloud Platform, Scala, Hipaa, Tensorflow, Pytorch, MLops, Microsoft Azure, Python, AWS, Healthcare IT standards, Scikit-learn, CI CD, AI ML concepts
Skills:
Cloud Architecture (AWS/Kubernetes), Python, Nlp, Machine Learning, Deep Learning, Data Analysis
Skills:
regression models , Tensorflow, AWS, Pytorch, GenAI agentic architecture, machine learning frameworks, Optimization Techniques, Scikit-learn, multi-agent architectures, AWS Solutions Architect certification, AI engineering patterns, Statistical Modeling, AI ML architecture