Senior MLOps Engineer

Strategic Data Systems, Inc.

Cincinnati (OH)

Hybrid

USD 120,000 - 180,000

Full time

5 hours ago
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Job summary

Strategic Data Systems, Inc. in Cincinnati, OH seeks a Senior MLOps Engineer to join our Data Science Enablement squad and create a secure, automated deployment pipeline for ML models.

You will educate data scientists on MLOps, balance engineering with change management, and expand capabilities with MLFlow, real-time endpoints, and Model Risk Management.

Qualifications

  • 3–5+ years of experience in machine learning and MLOps.
  • Proven experience with AWS SageMaker and end-to-end ML modeling.
  • Experience with data integration using IBM DB2 and Snowflake.
  • Strong understanding of CI/CD pipelines and automation tools.
  • Proficiency in Python, R, SQL and/or Java.
  • Familiarity with Jira, Terraform, GitHub, Jenkins.
  • Knowledge of Docker and Kubernetes.

Responsibilities

  • Develop and implement a secure, automated deployment pipeline.
  • Educate and mentor team members on MLOps practices.
  • Balance engineering tasks with change management and training.
  • Enhance MLOps capabilities with advanced tools and techniques (MLFlow, A/B testing, real-time endpoints, Model Risk Management).

Skills

MLOps
CI/CD
Mentoring

Tools

AWS SageMaker
Jira
Terraform
GitHub
Jenkins
Docker
Kubernetes
Snowflake
IBM DB2
Python
R
SQL
Java

Job description

Careers at SDS
Senior MLOps Engineer

Contract Cincinnati, OH 2 days ago Location Cincinnati, OH Job Type Contract Posted 2 days ago

About This Role

For more than three decades, Strategic Data Systems (SDS) has been a software consultancy firm specializing in strategy, technology, and business transformation for Fortune 100 companies, mid-sized firms, and startups. At SDS, we empower our development teams to address our clients’ critical business challenges by leveraging cutting edge technologies. If you seek a workplace where your contributions are truly appreciated, then SDS is the company for you. Join us today to work alongside fellow development specialists and become a crucial part of our dynamic and cohesive community.

What You’ll Do

Join our Data Science Enablement squad as a Senior Machine Learning Engineer. You will use an existing batch inference model to establish a secure, automated deployment pipeline. This role involves both engineering and change management, including architecture and training, with a focus on educating data scientists and other Data Science Enablement members on MLOps. Once the foundational deployment framework is in place, you will enable additional MLOps capabilities such as MLFlow, A/B testing, real-time endpoints, and further automation with Model Risk Management (MRM).

Key Responsibilities:

  • Develop and implement a secure, automated deployment pipeline.
  • Educate and mentor team members on MLOps practices.
  • Balance engineering tasks with change management and training.
  • Enhance MLOps capabilities with advanced tools and techniques.

Preferred Experience:

  • Experience in highly regulated industries like banking, finance, or healthcare.

Qualifications:

  • Experience:
  • Minimum of 3-5+ years of experience in machine learning and MLOps.
  • Proven experience with AWS Sagemaker and building end-to-end machine learning models.
  • Experience with data integration and management using IBM DB2 and Snowflake (or like databases)
  • Strong understanding of CI/CD pipelines and automation tools.
  • Technical Skills:
  • Proficiency in programming languages such as Python, R, SQL and/or Java.
  • Use of Fifth Third standard DevOps tools such as Jira, Terraform, GitHub, Jenkins
  • Knowledge of containerization and orchestration tools (e.g., Docker, Kubernetes).

Squad outcomes:

  • Future (2025 & Beyond) – Utilize AWS Sagemaker to expand Feature Store, introduce Model Registry, CI/CD, Real-Time models for our large data science credit models.
  • The squad is currently working on an in-house build of Feature Store to help speed up modeling process for our Data Science department. Combination of Snowflake, Cloud Pak for Data. (More on this later)
  • Currently, data scientist build model features (attributes) about customers in their own Jupyter notebook that feed into their models and never reuseable for others… aka reason for Feature Store
  • They are also working on building real time scoring framework for our loan/card application process. Right now it’s batch and can be almost 31 days behind.
  • Technology used: Docker, Kafka, Snowflake, Feature Store

What You’ll Get

SDS, Inc. provides equal employment opportunities (EEO) to all employees and applicants for employment without regard to race, color, religion, gender, sexual orientation, national origin, age, disability, genetic information, marital status, amnesty, or status as a covered veteran in accordance with applicable federal, state, and local laws.

  • Competitive base salary
  • Medical, dental, and vision insurance coverage
  • Optional life and disability insurance provided
  • 401(k) with a company match and optional profit sharing
  • Paid vacation time
  • Paid Bench time
  • Training allowance offering
  • You’ll be eligible to earn referral bonuses!
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