Senior Data Scientist / MLOps Engineer (Optimization Specialist)
Hybrid in Minneapolis, MN, US • Posted 1 day ago • Updated 1 day ago

iMedhas Consulting Services
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Job Details
Skills
- Optimization Algorithms (Simulated Annealing)
- MLOps & ML Pipeline Engineering (Azure preferred)
- Production-Grade Python / Model Deployment
- Algorithm Design & Variable Optimization
- Quantum Annealing / Quantum Computing (Exposure)
Summary
Job role: Senior Data Scientist / MLOps Engineer (Optimization Specialist)
Location: Minneapolis, MN (Hybrid). Local candidates are highly preferred due to onsite expectations.
Mandatory Skills |
Optimization Algorithms (Simulated Annealing) |
MLOps & ML Pipeline Engineering (Azure preferred) |
Production-Grade Python / Model Deployment |
Algorithm Design & Variable Optimization |
Quantum Annealing / Quantum Computing (Exposure) |
Job Title: Senior Data Scientist / MLOps Engineer (Optimization Specialist)
Location: Minnesota (Onshore - Required)
Type: Contract
Industry: Advanced Analytics / Quantum Computing Research
Job Summary
We are seeking a highly skilled Data Scientist with a strong background in MLOps Engineering to lead the development and productionalization of complex optimization models. You will be responsible for not only designing the core models specifically focusing on Simulated Annealing and transitioning toward Quantum Annealing, but also building the automated pipelines required to move these models into a production environment.
Key Responsibilities
- Core Modeling: Design and develop advanced optimization models. You will lead the "journey" from classical optimization to simulated annealing, with a future-state focus on quantum annealing.
- MLOps & Productionization: Bridge the gap between data science and DevOps by writing production-grade code. Ensure models are scalable, reliable, and integrated into the broader ecosystem.
- Pipeline Construction: Design and maintain robust data and ML pipelines. You will determine what data is pushed through the system and how it is processed for maximum efficiency.
- Algorithm Selection: Lead the selection of algorithms and variables. You must understand how models "reason" and be able to justify the architectural choices for the optimization engine.
- Deployment: Take full ownership of the model deployment lifecycle, ensuring that the "Optimization Thing" (internal use case) is fully functional in a live environment.
Technical Requirements
- Advanced Optimization: Deep expertise in optimization algorithms, specifically Simulated Annealing. Familiarity or interest in Quantum Annealing/Quantum Computing is a significant plus.
- Engineering Excellence: Proven ability to write production-ready code. This is not a research-only role; you must be able to "conscribe" and deploy your own work.
- MLOps Frameworks: Strong experience in building and managing machine learning pipelines ( Azure preferred).
- Data Science Fundamentals: Mastery of variable selection, algorithm tuning, and model evaluation metrics.
Preferred Qualifications
- Experience with high-stakes, confidential use cases involving complex data modeling.
- Local to Minnesota (Strongly preferred for onshore collaboration).
- Ability to work in an agile, fast-paced environment with an "immediate" onboarding timeline.
Thanks & Regards,
- Dice Id: 91143549
- Position Id: 8859552
- Posted 1 day ago
Company Info
Welcome to iMedhas Consulting Services. We are an IT consulting and services enterprises with precision expertise in Digital Transformations, Big data and Analytics. Through our expert team, we provide greater adaptabilities to disseminate with new technologies to increase the overall productivity, operational efficiency, and productivity of a particular business process of an organization.
The goal is the achievement of higher customer satisfaction and providing lucrative returns on investment to the business. On the other hand, we deliver content management expertise, ERP (SAP) systems integration, EAI, and Information Management services.

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