Machine Learning / Artificial Intelligence Engineer

Finalytics AI

United States

Hybrid

USD 120,000 - 190,000

Full time

5 days ago
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Job summary

Finalytics AI in the United States is seeking a hands-on ML/AI Engineer to build and productionize recommender models that predict product affinity, buying intent, and user segmentation within our SaaS personalization platform. Hybrid or remote work options are available.

You will architect data pipelines, integrate diverse data sources, and partner with engineering and product teams to deploy models in real-time, while iterating with hypothesis-driven experiments to improve performance.

Qualifications

  • Proven ML expertise in building recommender systems.
  • Experience creating multiple models such as Collaborative Filtering, XGBoost, K-Means, and predictive modeling.
  • Platform development: integrating predictive models into live SaaS environments.
  • Programming in Python, SQL, Java, or R and data engineering skills.
  • Experience with TensorFlow, PyTorch, JAX, and Jupyter Notebooks.

Responsibilities

  • Architect Complex Data Pipelines: Integrate disparate datasets including advertising metrics, web analytics (GA4/Adobe), digital banking transactions, and third-party sources (Census, Credit Bureau).
  • Build & Deploy Advanced Models: Design, train, and deploy recommender models that predict product affinity, buying intent, and user segmentation as well as learner models that understand how people and business research financial products.
  • Optimize & Experiment: Test models against historic data and experiment with combinations of algorithms to continually optimize for best results.
  • Cross-Functional Collaboration: Partner with engineering and product teams to integrate models into our SaaS platform, ensuring seamless real-time personalization.
  • Hypothesis-Driven Development: Analyze model performance in the wild and develop data-driven hypotheses for iterative algorithmic improvement.

Skills

Recommender systems
Collaborative Filtering
Matrix Factorization
Reinforcement Learning
Python
SQL
Java
R
TensorFlow
PyTorch
JAX
Jupyter
R-Studio

Education

Bachelor's degree in Statistics, Analytics, Mathematics, Computer Science, Information Technology or related field

Tools

TensorFlow
PyTorch
JAX
Jupyter Notebooks
R-Studio

Job description

Job Title: Machine Learning / Artificial Intelligence Engineer

Location: Hybrid or Remote

Employment Type: Full-Time or Contract

Finalytics is on a mission to make digital experiences in finance relevant, easy, and valuable.The financial organizations that run Finalytics are some of the most advanced at personalization in the country.We are looking for a new team member to help drive the next generation of our advanced personalization platform.

We are seeking a high-impact ML/AI Engineer to join our team and spearhead the next generation of our advanced personalization platform. This role is ideal for a hands-on technologist who thrives on bridging the gap between raw data and production-ready intelligence.We are looking for a AI/ML data scientist that can create recommender models which predict what products people want and how they research products (e.g. rates, personal consultation, comparative shopping).

What You’ll Do In This Role
  • Architect Complex Data Pipelines: Integrate disparate datasets including advertising metrics, web analytics (GA4/Adobe), digital banking transactions, and third-party sources (Census, Credit Bureau).
  • Build & Deploy Advanced Models: Design, train, and deploy recommender models that predict product affinity, buying intent, and user segmentation as well as learner models that understand how people and business research financial products.
  • Optimize & Experiment: Test models against historic data and experiment with combinations of algorithms to continually optimize for best results.
  • Cross-Functional Collaboration: Partner with engineering and product teams to integrate models into our SaaS platform, ensuring seamless real-time personalization.
  • Hypothesis-Driven Development: Analyze model performance in the wild and develop data-driven hypotheses for iterative algorithmic improvement.
What We Are Looking For
  • Proven ML Expertise: Demonstrable experience building recommender systems using frameworks such as Collaborative Filtering, Matrix Factorization, and Reinforcement Learning.
  • Model Experience: Experience creating multiple models such asCollaborative Filtering, XGBoost, K-Means Clustering, and predictive modeling.
  • Platform Development: Strong experience integrating predictive models into live SaaS environments.
  • Programming: Proficiency in languages such Python, SQL, Java, or R
  • Tools: Advanced experience in TensorFlow, PyTorch, JAX, Jupyter Notebooks, or R-Studio.
Preferred Qualifications (Nice to Have)
  • Domain Knowledge: Experience in FinTech, banking, or credit unions.
  • Advanced Data Sources: Familiarity with credit bureau data, segmenting tools (e.g., Claritas), or advertising APIs.
  • Emerging AI: Experience building agents or integrations with LLMs (e.g., via MCP or similar orchestration frameworks).
  • Analytics Mastery: Experience leveraging web analytics data (GA4, Piwik) for behavioral modeling.
Education

Bachelors degree in Statistics, Analytics, Mathematics, Computer Science, Information Technology or related field and 4 years+ experience

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