Data Scientist – Applied AI; LLMs, SLMs & Predictive Modeling
Concord, Merrimack County, New Hampshire, 03306, USA
Listed on 2026-05-30
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IT/Tech
AI Engineer (Applied/Software), Machine Learning/ ML Engineer, Data Scientist, Data Analyst
Overview
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The Center Well Centralized Data & Analytics team is seeking a highly hands-on Data Scientist 2 to lead the design, development, and scaling of predictive models, LLM- and domain-specific SLM-based solutions, and agentic AI systems for Home Health applications.
This role operates at the intersection of applied AI innovation and real-world production impact, with significant ownership in building production-grade AI systems trained on clinical data. You will combine advanced analytics and machine learning with modern AI techniques, along with strong MLOps, cloud, and Responsible AI practices, to deliver solutions that drive measurable business and patient outcomes.
Key Responsibilities- AI Systems & Intelligent Modeling
Own the design and development of end-to-end intelligent systems combining predictive modeling, LLMs, and domain-specific SLMs
Design and deploy predictive models (e.g., classification, regression, ranking, time series forecasting, anomaly detection, churn and risk modeling, and recommender systems), and integrate these signals into LLM- and SLM-based systems (e.g., RAG pipelines, decision engines)
Build and fine-tune proprietary SLMs trained on clinical notes and healthcare corpora
Develop and deploy LLM-based and agentic AI systems for reasoning, automation, and decision support
Engineer and optimize models across structured and unstructured data (tabular, text, and image)
- Clinical NLP, Multimodal AI & Innovation
Develop advanced clinical NLP solutions using embeddings, semantic search, and domain-specific models (e.g., Clinical
BERT, PubMedBERT)Extract insights from large-scale unstructured healthcare data, including clinical text corpora
Build and extend multimodal AI capabilities, including computer vision models (e.g., image classification) as complementary systems
Prototype and explore emerging approaches in LLMs, SLMs, and agentic AI to drive continuous innovation
Translate AI outputs into actionable clinical and business insights
- Delivery, MLOps & Impact
Lead end-to-end delivery, from rapid prototyping and MVP development to scalable production systems
Partner with engineering, product, and business stakeholders to align AI solutions with strategic goals
Deploy and monitor ML/LLM/SLM systems, including model performance, drift, bias, and impact
Implement MLOps best practices, including CI/CD, model lifecycle management, and scalable cloud deployment (Azure/AWS)
Drive Responsible AI practices, including explainability, governance, and compliance in healthcare environments
- Growth & Impact
Opportunity to shape the direction of applied AI systems in a rapidly evolving healthcare domain
Exposure to cutting-edge techniques across LLMs, SLMs, and agentic AI
Clear path to expanded ownership, technical leadership, and strategic influence
- Why This Role
Build real-world AI systems deployed at scale
, not just prototypesDevelop domain-specific SLMs on clinical data —a high-impact, differentiated capability
Work on meaningful problems that directly improve patient outcomes in Home Health
Operate at the intersection of predictive AI, SLMs, and agentic systems
Take ownership of solutions that drive measurable business and clinical impact
Bachelor’s degree in Data Science, Computer Science, Statistics, Engineering, Mathematics, or a related quantitative field, or equivalent practical experience
4+ years of experience in data science, machine learning, or applied AI, with strong foundations in statistical modeling
Proven experience developing and deploying LLM and/or SLM-based systems in real-world environments
Hands-on expertise fine-tuning domain-specific models (e.g., LoRA, QLoRA, RLHF, DAPT, DPO)
Strong experience in predictive modeling, including feature engineering, validation, and production deployment
Experience working with structured and unstructured data, particularly NLP and text-based systems domain-specific models (e.g., Clinical
BERT, PubMedBERT)Proficiency with modern AI/ML ecosystems, including Hugging Face, PyTorch/Tensor Flow, Databricks, and MLOps practices
Ability to independently own and drive complex AI solutions from concept to production
Master’s degree in a quantitative or technical field
Experience working with clinical or healthcare data
Exposure to multimodal AI systems (text + image)
Experience developing domain-specific or proprietary language models
You will report to a Lead Data Scientist
Location & Work StyleThis role is open to a remote work style in the US
Eastern or Central time zone is preferred
Ability to travel for on-site team meetings (occasionally) on East Coast
To ensure Home or Hybrid Home/Office associates' ability to work effectively, the self-provided internet service of Home or Hybrid Home/Office associates must meet the following criteria:
At minimum, a download speed of 25 Mbps and an upload speed of 10 Mbps is recommended; wireless, wired cable or DSL…
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