Metropolitan Commercial Bank

AI Scientist

Metropolitan Commercial Bank$130K — $200K *
Finance & Insurance
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 6+ years of relevant experience in AI and ML applications.
  • Expert in Python, deep learning frameworks (PyTorch/TensorFlow), and NLP.
  • Strong MLOps skills with CI/CD and containerization experience.
  • Proficient in Snowflake-native ML techniques and environments.
  • Solid data engineering background with SQL and ETL capabilities.
  • Experience in model explainability and fairness testing.
  • Strong understanding of regulatory compliance frameworks like SR 11-7.

Responsibilities

  • Design and implement AI/ML models for critical banking use cases.
  • Leverage advanced ML methods including LLMs and anomaly detection.
  • Produce comprehensive model documentation for governance alignment.
  • Facilitate model validations and manage deployment approvals.
  • Deploy and manage models within Snowflake using CI/CD practices.
  • Ensure cybersecurity and privacy compliance in all AI initiatives.
  • Collaborate across departments to meet project objectives.

Benefits

  • Standard 4-day in-office work week with 1 remote day.
  • Opportunity to lead innovative AI projects in a highly regulated environment.
Full Job Description
Position Summary:

Metropolitan Commercial Bank is seeking a VP-level Applied AI & Machine Learning Scientist to design, build, and validate production-grade AI/ML and Generative AI solutions in a highly regulated banking environment. This role focuses on high-impact use cases-fraud detection, AML alert optimization, AI-assisted credit memo generation for underwriting decision support, contact center AI assistant/copilots, and personalization for treasury/commercial clients-delivered with rigorous governance, explainability, fairness testing, privacy-by-design, cybersecurity, and model lifecycle controls aligned to SR 11-7 and MCB's Trustworthy & Responsible AI Principles. The role emphasizes Snowflake as the primary ML platform (e.g., Snowpark Python, UDFs/UDTFs, Tasks/Streams, and Snowflake-native ML).

Standard 4-day in-office requirement, 1 day remote (of your choosing)

Essential Functions & Responsibilities

Applied AI/ML development:
  • Design and implement models for fraud detection, AML alert scoring/triage, AI-generated credit memo drafting and underwriting decision support, contact center AI assistants, and personalization for commercial/treasury use cases.
  • Leverage modern methods: Large Language Models (LLMs), Retrieval-Augmented Generation (RAG), embeddings and vector databases, transformers, boosting, anomaly/outlier detection, and classical ML.
  • Embed explainability (e.g., SHAP, interpretable scorecards/monotonic models) and conduct pre-/post-deployment bias testing with documented remediation.

Model validation, documentation & governance (SR 11-7):
  • Produce audit-ready documentation (methodology, assumptions, data lineage, limitations, testing) and register models in the inventory with owners/materiality.
  • Facilitate independent validation/effective challenge; obtain required approvals before deployment; maintain change management and periodic review cadence.
  • Define monitoring, drift thresholds, retraining triggers, and safe rollback/kill-switch procedures; maintain human-in-the-loop checkpoints for high-impact decisions.

Productionization & MLOpson Snowflake
  • Package, deploy, and operate models via CI/CD, containerization, and model registry; instrument KPIs/KRIs and alerting dashboards. Operate models natively on Snowflake using Snowpark Python, UDFs/UDTFs, Tasks/Streams, and secure external access where required.
  • Partner with Engineering to integrate models via secure APIs/batch; ensure scalability, resiliency, and observability in cloud/on-prem (e.g., Snowflake, Azure ML, Databricks).

Regulatory, privacy, and cybersecurity alignment:
  • Design for ECOA/Reg B (adverse action specificity), UDAAP, FCRA, GLBA privacy, and NYDFS 23 NYCRR 500 cybersecurity requirements.
  • Apply privacy-by-design (data minimization, purpose limitation, retention), strong access controls/segregation, and secure SDLC/red teaming for GenAI stacks.

Third-party AI & data stewardship:
  • Support due diligence, testing, and ongoing monitoring of vendor AI/data providers per SR 23-4; evaluate conceptual soundness, fairness, and security.
  • Negotiate/verify contractual controls (no vendor training on MCB/NPI, subprocessors disclosure, audit rights, exit/portability).
  • Ensure AEDT compliance (NYC Local Law 144) for any HR-related AI tools.

Cross-functional partnership:
  • Collaborate with Model Risk, Compliance/Legal, Cyber/IT, Data Privacy, Internal Audit, and business owners to meet objectives while staying within risk appetite.
  • Communicate complex results, risks, and limitations clearly to technical and non-technical stakeholders (management committees, examiners).

Innovation, coaching, and best practices:
  • Evaluate emerging ML/GenAI methods, LLM evaluation techniques, Snowflake-native capabilities (e.g., vector search, orchestration), and governance tooling; lead POCs within established control gates.
  • Mentor junior staff; promote responsible AI practices, documentation standards, and reproducibility.

Qualifications & Skills:
  • 6+ years of relevant work experience.
  • Expertise in Python (pandas, scikit-learn), deep learning (PyTorch/TensorFlow), NLP/LLMs, LangChain, embeddings/vector search, and classic ML.
  • MLOps proficiency with CI/CD, containerization (Docker), registries, and observability; cloud ML (Snowflakes-native ML, Azure ML or Databricks preferred).
  • Snowflake-native ML proficiency: Snowpark Python, UDFs/UDTFs, Tasks/Streams; ability to build and operate ML workflows inside Snowflake.
  • Data engineering competency (SQL, ETL/pipelines, Spark/PySpark); ability to work with structured/unstructured data.
  • Explainability (e.g., SHAP) and fairness testing; ability to produce interpretable reason codes for ECOA/Reg B adverse actions as applicable.
  • Strong grasp of SR 11-7 lifecycle, model documentation, and operational monitoring within three lines of defense governance.
  • Excellent communication; ability to translate technical detail to business/risk stakeholders and drive decisions.
  • Curiosity and problem-solving mindset; ability to balance innovation with disciplined risk management.

Preferred Qualifications & Skills
  • Master's or PhD in a relevant field (Computer Science, Machine Learning, Data Science, Statistics, etc.) is strongly preferred, especially with research or thesis work related to AI/ML, NLP, or model interpretability.
  • Financial services domain experience (fraud risk, AML, underwriting, or commercial/treasury analytics).
  • Hands-on with Snowflake ML/Snowpark (Python), Tasks/Streams, secure external functions; experience with feature management/registry tooling a plus. model registry and pipeline orchestration; Kubernetes a plus.
  • RAG architectures, vector databases, prompt engineering, and LLM evaluation (accuracy, hallucination, safety).
  • Fairness toolkits and XAI frameworks; experience preparing models for validation, audit, or regulatory exam discussions.
  • Familiarity with SR 23-4 (third-party risk), NYC Local Law 144 (AEDT), NYDFS Part 500 (cyber).
  • Ability to work in a constantly evolving environment
  • Must have excellent written and verbal communication skills
  • Must be a good listener and good teacher
  • Demonstrate analytical, troubleshooting and problem-solving skills
  • The ability to learn new technologies quickly
  • Self-directed individual with technology and communication skills.
  • Ability to take in multiple sources of information with an understanding of the bigger picture need, want, and operation of the Bank.
  • Collaborative team-player who can find creative and practical solutions in a dynamic work environment.
  • Ability to handle ambiguity, juggle multiple matters at once, and quickly and seamlessly shift from one situation or task to another.

Potential Salary: $130,000 - $200,000 annually

This salary range reflects base wages and does not include benefits, bonus, or incentive pay. Salary bands are purposefully wide ranging to encompass the different factors considered in determining where a candidate falls in the range, including but not limited to, seniority, performance, experience, education, and any other legitimate, non-discriminatory factor permitted by law. Final offer amounts are determined by multiple factors including candidate experience and expertise and may vary from the amounts listed here.

About Metropolitan Commercial Bank

Metropolitan Commercial Bank is a commercial bank that provides a range of financial services to businesses, entrepreneurs, and individuals. The bank offers deposit accounts, loans, credit cards, and other financial products and services. Metropolitan Commercial Bank serves customers in various industries, including real estate, healthcare, and technology. The bank has a strong focus on technology and innovation, and has developed a number of digital banking solutions to meet the needs of its customers.
Learn more about Metropolitan Commercial Bank
Size
400 employees
Industry
Net Income
$50 million
Founded
1999
5 Year Trend
+30%
Revenue
$166 million
NASDAQ

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