Verisk Analytics

Senior Software Engineer

Verisk Analytics$120K — $150K *
Information Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • B.S. in Computer Science, Mathematics, Statistics, or related field; M.S. or Ph.D. preferred
  • 5+ years of software engineering experience, with 2 years in a senior role on AWS products
  • Strong Python skills for data engineering and ML pipelines
  • Hands-on with ML frameworks like scikit-learn, PyTorch, or TensorFlow
  • Experience in building production ML systems including model training and serving
  • Proficiency in AWS services like SageMaker and S3
  • Solid understanding of data modeling and SQL

Responsibilities

  • Design, build, and deploy machine learning models and AI features in SaaS products
  • Maintain scalable data pipelines for large, complex datasets
  • Develop model-serving infrastructure using AWS tools
  • Integrate LLMs and generative AI to enhance product functionality
  • Lead design and implementation of microservices and APIs on AWS
  • Conduct code reviews and mentor team members
  • Participate in roadmap planning and technology feasibility assessments

Benefits

  • Health Insurance
  • Retirement Plan
  • Disability benefits
  • Paid Time Off program
Full Job Description
Job Description

We are hiring a Senior Software Engineer with deep expertise in AI/ML engineering and data-intensive systems to join our Catastrophic and Risk Solutions team. You will be a key technical contributor on a cross-functional Agile team building cloud-native SaaS platforms that sit at the intersection of cutting-edge science and production software. This role goes beyond traditional full-stack development - you will design and ship AI-powered features, build data pipelines, and architect scalable ML-serving infrastructure on AWS. This role is office-based in our Boston location, which has a flexible hybrid work model.

Responsibilities

AI & Data Engineering
  • Design, build, and deploy machine learning models and AI-powered features into production SaaS products
  • Maintain scalable data pipelines for ingestion, transformation, and enrichment of large, complex datasets
  • Develop model-serving infrastructure using AWS SageMaker, Lambda, and container-based deployment patterns
  • Apply LLM integrations, RAG architectures, and generative AI capabilities where appropriate to enhance product functionality
  • Own data quality, observability, and monitoring for AI/ML workloads in production


Software Engineering & Architecture
  • Lead the design and implementation of cloud-native microservices and APIs (Python, C#/.NET) on AWS
  • Drive best practices in design, code quality, and system design across the team
  • Contribute to all stages of the SDLC: requirements review, design, development, testing, and deployment
  • Conduct code reviews and mentor team members on engineering standards
  • Proactively identify technical risks and communicate them early to course-correct
  • Participate in roadmap planning, scoping, and technology feasibility assessments
  • Contribute to a culture where solving customer problems is always the highest priority


Qualifications

Required
  • B.S. in Computer Science, Mathematics, Statistics, or a related quantitative field; M.S. or Ph.D. preferred
  • 5+ years of software engineering experience, with at least 2 years in a senior or lead role on cloud-native AWS products
  • Strong Python skills for data engineering, ML pipelines, and API development
  • Hands-on experience with ML frameworks such as scikit-learn, PyTorch, TensorFlow, or XGBoost
  • Experience building and deploying production ML systems - model training, evaluation, versioning, and serving
  • Proficiency with AWS data and AI services: SageMaker, S3, Glue, Athena, Lambda, EC2, CloudWatch
  • Experience with data pipeline tooling: Apache Spark, Airflow, dbt, or equivalent
  • Solid understanding of data modeling, SQL, and working with large-scale databases (PostgreSQL, MSSQL, or similar)
  • Strong grasp of software engineering fundamentals: CI/CD, DevOps, testing, and system design
  • Familiarity with REST API design, microservices, and containerization (Docker, Kubernetes)
  • Experience with Agile development methodologies


Nice to Have
  • Experience with LLMs, prompt engineering, or RAG (Retrieval-Augmented Generation) systems
  • Familiarity with MLflow, Weights & Biases, or other ML lifecycle management tools
  • AWS Certification (Machine Learning Specialty, Solutions Architect, or equivalent)
  • Experience with geospatial data, catastrophe modeling, or climate/weather datasets
  • Full-stack experience with Angular or React and .NET Core
  • Background in the insurance, reinsurance, or financial services industries

#LI-LM03
#LI-Hybrid

Verisk invests in a benefits package for all employees that includes the following: Health Insurance, a Retirement Plan, Disability benefits, and a Paid Time Off program. We offer a competitive total rewards package that includes base salary determined based on role, experience, skill set, and location.

About Verisk Analytics

Verisk Analytics is a data analytics company that provides data, analytics, and decision-support services to professionals in insurance, energy, healthcare, financial services, government, and risk management. The company uses proprietary data sets and algorithms to provide predictive analytics and decision support solutions to its clients. Verisk Analytics was founded in 1971 and is headquartered in Jersey City, New Jersey.
Learn more about Verisk Analytics
Size
9,367 employees
Market Cap
$27.2 billion
Industry
Net Income
$712.7 million
Founded
1971
5 Year Trend
+8.5%
Revenue
$2.7 billion
NASDAQ

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