Product Engineer

Reposted 4 Days Ago
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New York, NY, USA
Hybrid
Mid level
Artificial Intelligence • Fintech • Software • Financial Services • Automation
The Role
Build Preql’s core agentic AI workflows for financial data cleaning and transformation. Responsibilities include developing LLM-powered data pipelines, conversational interfaces, audit-ready transformation engines, APIs, financial data integrations, and web-based workflow builders. The role owns the full stack, collaborates directly with enterprise customers, and takes the product from proof of concept to MVP while ensuring data lineage, reproducibility, and compliance.
Summary Generated by Built In
Product Engineer - NYC

About Preql

Preql is building the AI-powered financial data platform for the modern enterprise. We're developing agentic AI workflows that help finance teams clean, transform, and structure their data without writing code. Think "Lovable.com for data pipelines" - just as website builders help users refine ideas into working apps, Preql helps users refine messy, fragmented financial data into production-ready workflows using natural language.

Our customers include media companies, media networks, retailers, and manufacturers who need reliable metrics and automated reporting. The company is backed by tier 1 venture firms and previous data company founders.

The Role

We're seeking a Product Engineer to own the core of our agentic workflows, starting with a data cleaning agent. You'll architect and implement an MVP that transforms how finance teams interact with their data - moving from manual Excel workflows to AI-powered, auditable data transformations.

What You'll Build:

  • Agentic AI workflows that convert natural language instructions into structured data transformations

  • Interactive data cleaning pipelines where users can refine transformations through conversational feedback

  • Audit-ready transformation engines that show their work and generate reproducible scripts (backed by code)

  • Web-based workflow builders that feel as intuitive as drag-and-drop but generate production code

  • Integration harnesses for Excel, CSV, and eventually ERP systems like NetSuite and QuickBooks

Key Responsibilities:

  • Design and implement the core agentic workflow engine from POC to MVP

  • Build user interfaces that make complex data transformations accessible to non-technical finance users

  • Create the technical foundation for LLM-powered data cleaning that maintains auditability and compliance

  • Develop APIs and integrations for financial data sources

  • Collaborate directly with customers to validate technical approaches and gather product feedback

  • Own the full stack from data ingestion to transformation output

Requirements

Technical Foundation:

  • 4+ years building production software with modern web technologies (TypeScript, Python, etc.)

  • Experience with LLM APIs (OpenAI, Anthropic) and agentic workflow patterns

  • Familiarity with data processing frameworks, ETL/ELT workflows, and data transformation tools and techniques

  • Understanding of cloud infrastructure (AWS, GCP, or Azure)

Product Mindset:

  • Track record of taking features from concept to production in fast-moving environments

  • Experience gathering user feedback and translating it into technical requirements

  • Understanding of data workflows and analytics concepts

  • Comfort working directly with enterprise customers

Finance/Compliance Awareness:

  • Understanding of audit requirements and data lineage needs

  • Familiarity with financial data formats and common transformation patterns

  • Appreciation for regulatory compliance in enterprise environments

Strong Advantages

Nice-to-haves, but not strict requirements.

  • 0→1 Experience: Evidence of manifesting ideas into product

  • AI/ML Experience: Building products with LLMs, prompt engineering, or agentic workflows

  • Data Platform Experience: Working with Snowflake, Databricks, or similar modern data stacks

  • Financial Software: Hands-on experience with NetSuite, QuickBooks, HubSpot, or ERP systems

  • Enterprise Sales: Customer-facing experience with technical sales or solution engineering

  • Compliance Background: SOC 2, audit trail requirements, or regulatory data handling

What Makes This Role Special

You'll be building the foundational technology that defines how AI transforms enterprise data workflows. This isn't about incremental improvements to existing tools - you're creating entirely new interaction patterns between humans and data systems.

Impact: Your code will directly determine whether finance teams can trust AI with their most critical data Growth: Join as a founding engineer with significant equity and leadership opportunities Innovation: Work at the cutting edge of agentic AI applied to real business problems

Next Steps

Ready to build the future of data transformation? Send us a 50-word note introducing yourself and why this role is interesting to you. Additionally, include a resume/LinkedIn and, if available for sharing, include a portfolio highlighting relevant projects, especially any work with AI agents, data pipelines, or enterprise software.

Skills Required

  • 4+ years building production software with modern web technologies such as TypeScript or Python
  • Experience with LLM APIs, including OpenAI or Anthropic, and agentic workflow patterns
  • Familiarity with data processing frameworks, ETL/ELT workflows, and data transformation techniques
  • Understanding of cloud infrastructure such as AWS, GCP, or Azure
  • Track record of taking features from concept to production in fast-moving environments
  • Experience gathering user feedback and translating it into technical requirements
  • Understanding of data workflows and analytics concepts
  • Comfort working directly with enterprise customers
  • Understanding of audit requirements and data lineage needs
  • Familiarity with financial data formats and common transformation patterns
  • Appreciation for regulatory compliance in enterprise environments
  • 0-to-1 product development experience
  • AI/ML experience, including LLM products, prompt engineering, or agentic workflows
  • Data platform experience with Snowflake, Databricks, or similar technologies
  • Financial software experience with NetSuite, QuickBooks, HubSpot, or ERP systems
  • Enterprise sales, technical sales, or solution engineering experience
  • Compliance experience involving SOC 2, audit trails, or regulatory data handling
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The Company
HQ: New York, New York
21 Employees
Year Founded: 2022

What We Do

Preql is the AI-powered data platform built for modern finance teams. It unifies financial and operational data, automates reconciliation, and delivers clean, reliable reporting—without needing engineers or ripping out your ERP stack. Preql makes it simple to answer critical questions about profitability and performance across teams, products, or markets, all from a single source of truth your whole company can trust.

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