Senior Staff / Staff Software Engineer
Scowtt Inc · Seattle, WA
📍 Seattle / San Francisco💰 $180,000 - $260,000via greenhousePosted 2026-09-18
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About Scowtt
Scowtt is an early-stage startup transforming the way businesses convert leads into customers through AI/ML marketing optimization and fully autonomous sales experiences. By integrating CRM, web signals, and product interaction data into real-time systems, we help businesses turn interest into action—immediately. We’re growing fast, and building scalable data infrastructure and applications that allow us to onboard, understand, and activate customer data quickly is core to our success.
About the Role
We are looking for a Senior / Staff Software Engineer — Data Platform to build and evolve the data and application systems that power our Marketing AI and AI Sales Agents. This is a hands-on engineering role with significant ownership across data pipelines, backend applications, analytics systems, and customer data integrations. You will build systems that ingest data from a wide variety of customer platforms, transform it into reliable and curated datasets, and make that data available to our ML systems, analytics applications, and customer-facing products. The role is primarily backend focused, but we are a startup—you should be comfortable working across the stack and occasionally building frontend functionality when needed to get a product or capability shipped. We value engineers who can take an ambiguous problem, determine the right technical approach, and drive it independently from design through production.
What You’ll Do
Own backend and data systems end-to-end, from architecture and implementation to production operation and scale
Design and build scalable data pipelines for CRM, web, advertising, product, and other customer data
Build integrations with data warehouses and platforms such as BigQuery, Snowflake, Databricks, Redshift, and customer-managed databases
Design reliable ingestion patterns across APIs, cloud storage, databases, data sharing, batch processing, and event-driven systems
Build curated datasets and data models used by ML systems, analytics, reporting, and customer-facing applications
Develop backend APIs, services, and internal applications using Python and TypeScript
Build systems for large historical backfills as well as reliable, low-latency incremental processing
Solve systemic problems around data quality, schema evolution, scalability, observability, reliability, and operational efficiency
Build tooling that makes customer onboarding, data validation, configuration, and troubleshooting faster and more automated
Work across GCP and AWS and make pragmatic architecture decisions based on the problem at hand
Occasionally contribute to frontend applications when necessary to deliver complete product experiences
Help define architecture, engineering standards, and reusable patterns as the platform scales
Mentor other engineers and raise the engineering bar across the team
Follow and enforce security best practices, including secure coding, proper handling of sensitive data, authentication/authorization controls, and compliance with company security policies
Qualifications
Must Have
Bachelor’s degree in Computer Science, Engineering, or equivalent practical experience
7+ years of experience building production software systems
Strong hands-on software engineering experience with Python and TypeScript / Node.js
Significant experience designing and operating backend services and production data pipelines
Strong SQL skills and experience working with large datasets and analytical databases
Experience building and operating systems in GCP and/or AWS
Demonstrated ability to independently own complex systems from design through production
Strong problem-solving skills and ability to move quickly in ambiguous environments
Should Have
Experience with modern data warehouses and platforms such as BigQuery, or Redshift
Experience building ingestion frameworks across APIs, databases, object storage, and event-driven systems
Strong understanding of distributed systems, data modeling, idempotency, retries, concurrency, and failure recovery
Experience building curated datasets and data infrastructure supporting machine learning and analytics workloads
Experience designing production APIs and backend services at scale
Experience with cloud services such as GCS, S3, Cloud Run, Lambda, SQS/PubSub, Postgres/RDS, or equivalent technologies
Strong understanding of monitoring, observability, automated testing, and production operations
Proven ability to influence technical direction through architecture and execution
Nice to Have
Experience integrating with CRM and marketing platforms such as Salesforce, HubSpot, Google Ads, Meta, or similar systems
Experience building multi-tenant SaaS platforms
Familiarity with ML training, feature generation, inference, and model-serving workflows
Experience with modern frontend frameworks such as React or Next.js
Experience with Terraform or other Infrastructure as Code tooling
Familiarity with ad-tech, mar-tech, sales-tech, or CRM ecosystems
Experience building developer platforms, data onboarding frameworks, or self-service data tooling
What Success Looks Like
Customer data can be onboarded and activated significantly faster with less manual engineering work
Data pipelines remain reliable as data volume, customer count, and integration complexity increase
ML and product teams have clean, trusted, and reusable datasets they can build on
Teams move faster because of the platforms, abstractions, and tooling you build
Technical architecture scales cleanly with product ambition
You identify problems proactively and drive them to resolution without requiring detailed direction
You create durable engineering leverage across the company
Pay range and compensation package
Based on the level hired at and location, the base salary for this role will be in the range $180,000 - $260,000. Selected candidate/s will be eligible for sta
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