Why This Role Stands Out
This hybrid AI/ML Engineer role at INFT Solutions offers an exciting opportunity to leverage your insurance domain expertise and advanced technical skills to drive innovation in a dynamic industry. You'll thrive here if you're passionate about building impactful predictive models and automating processes, contributing to a forward-thinking company with excellent growth prospects. Apply today to shape the future of insurance through cutting-edge AI.
Quick Overview
Job Description
Job Summary
We are looking for an AI/ML Engineer with strong Insurance domain experience to design, develop, and deploy machine learning and AI solutions for insurance-related business problems. The candidate will work with business and technical teams to build predictive models, automate processes, analyze insurance data, and improve decision-making.
Key Responsibilities
- Develop and implement Machine Learning and AI models for insurance use cases.
- Work with large and complex insurance datasets to identify patterns and insights.
- Build predictive models for areas such as claims, underwriting, risk assessment, fraud detection, and customer analytics.
- Perform data preprocessing, feature engineering, model training, evaluation, and optimization.
- Develop and maintain ML pipelines for model deployment and monitoring.
- Collaborate with Data Scientists, Data Engineers, Business Analysts, and Insurance SMEs.
- Deploy AI/ML solutions into production environments and troubleshoot model-related issues.
- Apply NLP, Generative AI, or other AI techniques where applicable.
- Ensure models are scalable, reliable, and aligned with business requirements.
- Document models, processes, and technical solutions.
Required Skills
- 7+ years of experience in AI/ML Engineering, Machine Learning, or Data Science.
- Strong experience with Python and ML libraries such as Scikit-learn, Pandas, NumPy, TensorFlow, or PyTorch.
- Experience with Machine Learning algorithms, predictive modeling, and statistical techniques.
- Experience with data preprocessing, feature engineering, and model evaluation.
- Knowledge of ML deployment, APIs, and MLOps concepts.
- Experience working with SQL and databases.
- Good understanding of cloud platforms such as AWS, Azure, or Google Cloud Platform.
- Strong Insurance domain experience is required.
Insurance Domain Experience
Experience with one or more of the following is preferred:
- Property & Casualty (P&C)
- Life Insurance
- Health Insurance
- Claims Processing
- Underwriting
- Risk Assessment
- Fraud Detection
- Policy Management
- Premium/Pricing Analytics
- Customer/Agent Analytics
Preferred Skills
- Experience with Generative AI / LLMs / NLP.
- Knowledge of MLOps and CI/CD.
- Experience with Docker/Kubernetes.
- Experience with cloud-based AI/ML services.
- Strong communication and problem-solving skills.
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