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QventusQV

Senior Machine Learning Engineer - Data Platform

Optimizing hospital operations. Qventus uses a hospital’s data along with proprietary external data signals to help managers proactively manage day-to-day operations.

Qventus

Employee count: 51-200

Salary: 180k-216k USD

United States only

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On this journey for over 12 years, Qventus is leading the transformation of healthcare. We enable hospitals to focus on what matters most: patient care. Our innovative solutions harness the power of machine learning, generative AI, and behavioral science to deliver exceptional outcomes and empower care teams to anticipate and resolve issues before they arise.

Our success in rapid scale across the globe is backed by some of the world's leading investors. At Qventus, you will have the opportunity to work with an exceptional, mission-driven team across the globe, and the ability to directly impact the lives of patients. We’re inspired to work with healthcare leaders on our founding vision and unlock world-class medicine through world-class operations.

Qventus is looking for a Senior Machine Learning Engineer to productionalize, operate, and scale machine learning models and advanced feature pipelines developed by our Data Science team across our AI-driven healthcare products. This role is ideal for someone who likes owning end-to-end model execution in production. From curated data inputs and feature computation through training jobs, batch/real-time inference, and performance iteration.

As Qventus’ first dedicated Senior ML Engineer, you’ll work at the intersection of Data Science, Data Engineering, and Product to take our newest and most complex models out of notebooks and into durable, scalable production systems. You will partner with Data Scientists who develop the models and build the feature pipelines, training and retraining workflows, and batch and real-time inference logic required to run them reliably on top of Qventus’ data platform - while optimizing for accuracy, latency, cost, and stability across diverse hospital environments. Your work will ensure Qventus’ AI systems are accurate, explainable, and safe for real-world use, enabling care teams to make better, faster decisions across the hospital. You will be strongly motivated to have impact in the company and dedicated to improving the quality of healthcare and patient outcomes.

Key Responsibilities

  • Build, run, and evolve production ML and LLM systems by implementing feature pipelines, training and retraining workflows, and batch and real-time inference on top of Qventus’ data platform
  • Monitor and optimize model performance across hospitals, improving accuracy, latency, cost, and reliability
  • Build and maintain model-level feature pipelines and feature management systems on top of curated datasets to support training, inference, and replay.
  • Collaborate with Data Science leaders to establish best practices for applied ML at Qventus, setting standards for feature design, evaluation, and production readiness through iteration and retraining

Key Qualifications

  • 3+ years building and running machine learning models in production using Python and SQL in modern cloud-based ML environments (AWS & Databricks preferred) & ML frameworks (e.g., scikit-learn, PyTorch, XGBoost, TensorFlow, or HuggingFace)
  • Demonstrated ability to design and run feature engineering, training, and inference workflows in applied ML systems
  • Hands-on experience with modern
  • Familiarity with operationalizing LLMs or retrieval-augmented generation (RAG) systems; Exposure to LLM frameworks and libraries (Langchain, LlamaIndex, HuggingFace, etc.)
  • Strong understanding of software engineering principles and writing maintainable, modular code
  • Strong collaboration and communication skills — able to partner closely with product, clinical, and engineering stakeholders

Nice to Have

  • 3+ years applied or research experience using a wide variety of statistical and machine learning techniques - particularly in NLP, explainable ML (Python)
  • Experience supporting cloud-based, highly available, observable, and scalable data platforms utilizing large, diverse data sets in production to meet ambiguous business needs
  • Strong background in data quality validation and model monitoring in healthcare or regulated environments
  • Experience supporting ML Ops infrastructure (model packaging, orchestration, observability, CI/CD)
  • Prior experience working in healthcare, particularly with EMR, claims, or hospital operations data
  • Master’s degree in Computer Science, Engineering, or related field, or equivalent industry experience

Compensation for this role is based on market data and takes into account a variety of factors, including location, skills, qualifications, and prior relevant experience. Salary is just one part of the total rewards package at Qventus. We also offer a range of benefits and perks, including Open Paid Time Off, paid parental leave, professional development, wellness and technology stipends, a generous employee referral bonus, and employee stock option awards.

Salary Range
$180,000—$216,000 USD

Qventus values diversity in its workforce and proudly upholds the principles of Equal Opportunity Employment . We welcome all qualified applicants and ensure fair consideration for employment without discrimination based on any legally protected characteristics, including, but not limited to: veteran status, uniformed service member status, race, color, religion, sex, sexual orientation, gender identity, age, pregnancy (including childbirth, lactation and related medical conditions), national origin or ancestry, citizenship or immigration status, physical or mental disability, genetic information (including testing and characteristics) or any other category protected by federal, state or local law (collectively, "protected characteristics"). Our commitment to equal opportunity employment applies to all persons involved in our operations and prohibits unlawful discrimination by any employee, including supervisors and co-workers.

Qventus participates in the E-Verify program as required by law and is committed to providing reasonable accommodations to individuals with disabilities in compliance with Americans with Disabilities Act (ADA). In compliance with the California Consumer Privacy Act (CCPA), Qventus provides transparency into how applicant data is processed during the application process. Candidate information will be treated in accordance with our candidate privacy notice.

*Benefits and perks are subject to plan documents and may change at the company's discretion.

*Employment is contingent upon the satisfactory completion of our pre-employment background investigation and drug test.

About the job

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Posted on

Job type

Full Time

Experience level

Senior

Salary

Salary: 180k-216k USD

Location requirements

Hiring timezones

United States +/- 0 hours

About Qventus

Learn more about Qventus and their company culture.

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Optimizing hospital operations.

Qventus uses a hospital’s data along with proprietary external data signals to help managers proactively manage day-to-day operations. Qventus's algorithms analyze hospital data along with important operational and clinical metrics, allowing hospital staff to both monitor operational performance and automatically diagnose operational issues in real-time. In addition, Qventus’s machine-learning based forecasting techniques enable hospitals to predict patient volumes and optimally allocate resources – such as staff, beds, and rooms – to meet this demand. These insights are delivered to staff in the workflows with which they are already accustomed.

Employee benefits

Learn about the employee benefits and perks provided at Qventus.

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Company meals

Enjoy lunch on us, with catered meals and snacks.

Team events

Get together for quarterly hackathons and team events.

Generous vacation

We have a generous PTO policy to help encourage work life balance.

Healthcare benefits

Medical, dental, and vision insurance for employees and dependents.

View Qventus's employee benefits
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Qventus

Company size

51-200 employees

Founded in

2012

Chief executive officer

Mudit Garg

Employees live in

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