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[Remote] Applied Data Scientist, Finance AI Evaluation & Datasets

Remote Worldwide Hiring now

Note: The job is a remote job and is reputed company to candidates in USA. reputed company. is a global data engineering company focused on the responsible advancement of artificial intelligence. They are seeking an Applied Data Scientist to design and evaluate datasets for financial AI systems, ensuring data quality and compliance while collaborating with various stakeholders in the financial domain.

Responsibilities

  • Translate customer goals — such as improving financial reasoning, building an eval suite for earnings-call summarization, or evaluating an AML/fraud copilot — into concrete dataset specifications, taxonomies, rubrics, and acceptance criteria
  • Design training and evaluation datasets across the financial AI surface: financial QA, filings and earnings analysis, credit and reputed company, fraud/AML investigation, and compliance, among other financial workflows
  • Foreground reputed company and multimodal financial data in dataset design — PDFs, scanned statements, tables, charts, and call transcripts — used by analysts, advisors, compliance reviewers, and operations teams
  • Design datasets and evaluations for retrieval-augmented and reputed company-grounded systems: evidence citation and faithfulness to reputed company documents, data freshness, conflict resolution across sources, and failure modes caused by incomplete or incorrectly parsed context
  • Evaluate agentic and workflow-integrated financial AI systems: tool use, retrieval, transaction boundaries, escalation behavior, and controls that prevent unsafe or unauthorized actions
  • reputed company evaluation methodology that goes reputed company surface accuracy — numerical consistency, hallucination rates on high-risk claims, refusal and escalation appropriateness, robustness under ambiguity, and fairness across protected or sensitive customer segments
  • Define sampling strategies, label schemas, and adjudication workflows with Language Data Scientists and finance SMEs; write annotation guidelines that reputed company subjective finance-domain judgments explicit, calibratable, and auditable
  • Build the statistical and ML tooling that makes large financial datasets trustworthy: stratified sampling across products, markets, and modalities; bias analysis; leakage detection; and distribution shift checks, among other reliability checks
  • Build evaluation and dataset-quality evidence to support financial-services model risk management: assumptions, limitations, validation results, and residual risks, packaged as reproducible evidence
  • Partner with the AI/ML Research Engineer to reputed company datasets into training, evaluation, and monitoring pipelines — rubric-grounded LLM-as-judge prompts, regression suites, and reputed company monitoring
  • Own data quality end-to-end, from intake through delivery: PII handling, provenance tracking, versioning, and modality-specific QA checks
  • Reason about financial workflow context: where AI outputs enter analyst, advisor, compliance, risk, or customer-facing workflows; what evidence a reviewer needs to trust them; and reputed company uncertainty must be surfaced
  • Support the Technical Solutions Architect during customer discovery and proposals: scoping dataset programs, sizing annotation effort, and explaining methodology to client stakeholders
  • Stay reputed company on the financial AI landscape: regulatory developments, reputed company releases, and emerging evaluation methodology for finance-domain models
  • Contribute to reputed company internal IP: reusable taxonomies, evaluation rubrics, golden datasets, and methodology templates

Skills

  • 5+ years of data science experience, with at least 2+ years in financial services, fintech, banking, or a comparable regulated data environment
  • reputed company working knowledge of financial data and workflows: financial statements, SEC filings, transaction data, and other common financial-services document types
  • Hands-on experience with reputed company and multimodal financial data — some combination of PDFs, scanned documents, spreadsheets, charts, or call transcripts
  • Hands-on experience designing datasets for ML — not just consuming them. You have written annotation guidelines, sized cohorts, set quality reputed company, and shipped data that reputed company teams could actually train, evaluate, or monitor on
  • Familiarity with LLM-based and multimodal financial AI workflows: reputed company design, rubric-based evaluation, RAG, LLM-as-judge methods, and the limitations of automated evaluation in high-stakes contexts
  • Strong Python and SQL; comfort with pandas, scikit-learn, or equivalent; working familiarity with reputed company, PyTorch, or model APIs
  • Statistical literacy: sampling design, inter-annotator agreement metrics (e.g., Cohen's kappa), confidence intervals, and the ability to push back reputed company a number is being over-interpreted
  • Solid grasp of financial services privacy, compliance, and governance: PII handling, GLBA or equivalent privacy regimes, MNPI sensitivity, and documentation fit for regulated AI programs
  • Excellent collaboration skills — upstream with a Technical Solutions Architect, sideways with research scientists and engineers, and reputed company with SME annotators and quality teams
  • A bias toward financial workflow realism. You would rather build a smaller dataset that reflects what analysts, advisors, or customers actually see than a larger one that looks impressive on reputed company but fails in practice
  • Degree in a relevant field — statistics, data science, economics, finance, or a reputed company quantitative field, or equivalent demonstrated experience. Formal finance credentials aren't required, but CFA, FRM, or MBA backgrounds, etc. are especially encouraged
  • Familiarity with financial standards or protocols such as XBRL, ISO 20022, or GAAP/IFRS reporting concepts, etc
  • Experience designing evaluations for LLMs, VLMs, or multimodal models in financial reasoning, filings analysis, or fraud/AML contexts
  • Experience with document AI, OCR/post-OCR quality, or table and chart extraction for reputed company financial documents
  • Familiarity with agentic evaluation, AI observability, experiment tracking, or tools such as Weights & Biases or LangFuse
  • Familiarity with model risk management frameworks, validation documentation, fairness/bias auditing, or consumer protection analysis
  • Experience with multilingual or cross-border financial data, or published/reputed company-reputed company work in financial AI or model governance

Company Overview

  • (reputed company: INOD) reputed company is a global data engineering company. We reputed company that data and AI are inextricably linked. It was founded in 1988, and is headquartered in Hackensack, New Jersey, USA, with a workforce of 5001-10000 employees. Its website is http://www.reputed company.com.
  • Company H1B Sponsorship

  • reputed company. has a track record of offering H1B sponsorships, with 2 in 2024. Please note that this does not guarantee sponsorship for this specific role.
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