Job Description
Job Responsibilities
- Analyze complex data sets to identify trends, patterns, and insights that can drive business decisions.
- Design and develop predictive models, algorithms, machine learning, and artificial intelligence techniques to improve the accuracy and efficiency of analytics solutions
- Collaborate with cross-functional teams to ensure the data used is accurate, relevant, and up-to-date for analytics purposes.
- Contribute to hands-on development of data & analytics solutions.
- Deliver products and solutions in a timely, proactive, and entrepreneurial manner.
- Accelerate solution delivery using re-usable frameworks, prototypes and hackathons.
- Follow MLOps principles to ensure scalability, repeatability, and automation in the end-to end machine learning lifecycle.
- Developing and maintaining detailed technical documentation.
- Stay up-to-date on industry trends and new technologies in data science and analytics, and apply this knowledge to improve the firm's analytics capabilities
Education, Technical Skills & Other Critical Requirement
- 0-5 years of relevant experience in AI/ analytics product & solution delivery
- Bachelor’s/Master’s degree in an information technology/computer science/Statistics/ Economics or equivalent fields experience.
- Strong understanding of Machine Learning and Deep Learning concepts, with a focus on Natural Language Processing.
- Proficiency in Python programming language, with experience using libraries like PyTorch for deep learning tasks.
- Familiarity with Elastic stack (Elasticsearch, Logstash, Kibana) for data management and analysis.
- Experience in optimizing algorithms and time series forecasts.
- Knowledge of prompt engineering techniques to improve model performance.
- Ability to prototype applications using Streamlit or similar tools.
- Experience working with large and complex internal, external, structured and unstructured datasets.
- Model development and deployment in cloud; Familiarity with Github, CI/CD process, Docker, Containerization & Kubernetes.
- Strong conceptual and creative problem-solving skills
- Good written, verbal communication skills and presentation skills; engage in meaningful manner with variety of audience: business stakeholders, technology partners & practitioners, executive and senior management.
- Industry knowledge about emerging AI trends, AI tools and technologies
Preferred:
- Familiarity of new age AI and ML techniques such as GenAI, foundational models, large language models (LLMs) and applications
- Certifications in AI space such as ML Ops, AI Ops, Generative AI, Ethical AI, AI deployment in cloud
- Familiarity with agile methodologies & tools
- Prior experience in P&C Insurance Analytics
- Prior experience in Analytics consulting and services
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