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Architect AI Engineer / AI Evangelist, Healthcare Business Unit (EMEA)

GlobalLogic · Remote - Ukraine, Romania, Slovakia, Croatia · 2026-09-03

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Job description

Requirements

- Bachelor’s or Master’s degree in Data Science, Computer Science, Statistics, Applied Mathematics, or related field.

- 7+ years of experience in data science or machine learning roles, ideally with exposure to healthcare projects.

- Strong knowledge of ML frameworks such as scikit-learn, TensorFlow, PyTorch, XGBoost, or LightGBM.

- Proficiency in Python for data science and related libraries (NumPy, pandas, matplotlib, seaborn, etc.).

- Experience working with large datasets and data processing frameworks (e.g., Spark, Dask, SQL).

- Understanding of MLOps concepts and tools (e.g., MLflow, Kubeflow, Vertex AI, Azure ML).

- Familiarity with cloud environments (Azure, AWS, or GCP) for training and deploying models.

- Experience with model interpretability, fairness, and explainability techniques.

- Strong communication and visualization skills for storytelling with data.

- English proficiency at Upper-Intermediate level or higher.

Preferred Qualifications (Nice to Have)

- Experience working with medical data (EHR, imaging, wearables, clinical trials, etc.).

- Familiarity with healthcare regulations related to data and AI (e.g., HIPAA, GDPR, FDA AI/ML guidelines).

- Knowledge of FHIR, HL7, or other healthcare interoperability standards.

- Practical experience with deep learning models (e.g., CNNs for imaging, transformers for NLP).

- Involvement in presales, proposal writing, or technical advisory work.

Job responsibilities

- Lead the design and development of AI/ML solutions across HealthTech and MedTech projects.

- Participate in technical presales by analyzing business cases and identifying opportunities for AI/ML application.

- Build and validate predictive models, classification systems, NLP workflows, and optimization algorithms.

- Collaborate with software engineers, cloud architects, and QA to integrate models into scalable production systems.

- Define and guide data acquisition, preprocessing, labeling, and augmentation strategies.

- Contribute to the development of GlobalLogic’s healthcare-focused AI accelerators and reusable components.

- Present technical solutions to clients, both business and technical audiences.

- Support model monitoring, drift detection, and retraining pipelines in deployed systems.

- Ensure adherence to privacy, security, and compliance standards for data and AI usage.

- Author clear documentation and contribute to knowledge sharing within the Architects Team.