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Expert AI/ML Engineer
Flexton IncOakland, CA🇺🇸United StatesPosted 20 Jul 2026
Why This Role Stands Out
Advance your career at Flexton Inc. by leveraging your extensive AI/ML expertise in a hybrid role that offers significant opportunities for growth and mentorship. You'll thrive here if you have a passion for building and deploying cutting-edge ML models and a solid background in various machine learning techniques. This is an excellent chance to join a reputable company and make a real impact, so don't miss out on applying!
Quick Overview
Work Type
Hybrid
Level
Mid Senior
Job Description
Required Qualifications
- 8+ years of experience in machine learning, data science, AI engineering, ML engineering, or related roles.
- Strong hands-on experience building, tuning, validating, and deploying ML models.
- Experience mentoring data scientists, ML engineers, data engineers, or analytics teams.
- Strong knowledge of supervised learning, unsupervised learning, classification, regression, forecasting, NLP, and model evaluation techniques.
- Experience with Python and common ML/data science libraries such as pandas, NumPy, scikit-learn, XGBoost, TensorFlow, PyTorch, or similar.
- Practical experience with MLOps concepts such as model registry, experiment tracking, CI/CD, deployment pipelines, monitoring, drift detection, and retraining.
- Experience working with enterprise data platforms, cloud platforms, and modern data engineering practices.
- Strong understanding of data quality, feature engineering, model validation, and production support.
- Ability to translate business problems into AI/ML solution designs.
- Strong communication skills with the ability to explain technical concepts to both technical and non-technical stakeholders.
- Programming: Python, SQL
- Machine Learning: scikit-learn, XGBoost, TensorFlow, PyTorch, statistical modeling, forecasting, NLP
- MLOps: MLflow, Azure ML, Dataiku, model registry, CI/CD, GitHub Actions
- Data Platforms: Snowflake, Azure SQL, Oracle, data lakes, cloud data platforms
- AI/GenAI: LLMs, prompt engineering, RAG, semantic search, text-to-SQL, document intelligence
- Governance: model documentation, lineage, metadata, data quality, responsible AI, privacy and security controls
Desired Skills:
Preferred Qualifications
- Experience in healthcare, dental insurance, health insurance, financial services, or another regulated industry.
- Experience with platforms such as Azure ML, Dataiku, Databricks, Snowflake, MLflow, GitHub, GitHub Actions, Power BI, or similar tools.
- Experience with GenAI and LLM-based solutions.
- Experience designing AI solutions using enterprise data platforms such as Snowflake or cloud-based data ecosystems.
- Experience with responsible AI, model governance, bias detection, explainability, and audit requirements.
- Experience supporting AI governance councils, architecture reviews, or model risk review processes.
- Experience with healthcare data domains such as members, providers, claims, benefits, eligibility, call center, clinical, dental, or operational data.
Skills
Oracle
SQL
MLOps
MLflow
Machine Learning
NLP
NumPy
Scikit-learn
Snowflake
Azure
Databricks
GitHub Actions
LLM
Pandas
Power BI
PyTorch
Python
TensorFlow
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