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Agent guide: [/agents.md](https://www.wearedevelopers.com/agents.md). --- # TELECOMMUTE Staff Data Engineer - **Company:** Cribl, Inc. - **Location:** United States (Remote available) - **Salary:** $170,000.0 - $220,000.0 - **Contract:** Permanent contract - **Skills:** Application Programming Interfaces (APIs), Artificial Intelligence, Airflow, Amazon Web Services, Data Analysis, Cloud Computing, Code Review, Continuous Integration, Directed Acyclic Graph (Directed Graphs), Information Engineering, Data Warehousing, Python (Programming Language), Performance Tuning, Role-Based Access Control, SQL Databases, Management of Software Versions, Web Services, Data Logging, Large Language Models, Snowflake, Backend, Core Data, Terraform, Data Pipelines, Serverless Computing - **Published:** August 5, 2026 - **Apply:** https://www.dice.com/job-detail/6280bac4-cd74-43d5-9aad-ee921b75ba7f ## About the Role * Deep expertise in Snowflake: advanced data modeling, query and warehouse performance tuning, cost management, and security/RBAC design. This is the most important qualification for the role. * Demonstrated technical leadership: experience as a tech lead or staff-level engineer setting direction, driving architecture, and delivering complex systems across a team. * Excellent communication and cross-functional collaboration: able to work across data, engineering, and business teams and lead through influence. * A track record of mentoring engineers: growing junior and mid-level engineers through coaching, review, and pairing. * Strong Python and SQL fundamentals, with solid ELT patterns and data modeling experience. * Hands-on experience operating self-hosted / self-managed orchestration. Prefect strongly preferred; equivalent experience running (not just authoring on) Airflow/Dagster on your own infrastructure is acceptable. Must be comfortable owning upgrades, workers, and the operational footprint, not only writing DAGs/flows. * Hands-on AWS and infrastructure-as-code experience: building cloud infrastructure with Terraform (or equivalent) using predictable, maintainable patterns. * Experience building cloud applications or backend services: APIs, ingestion services, and event-driven workflows. * Production-grade engineering practices: logging, alerting, versioning, CI/CD. * Fluency building with AI-assisted development platforms such as Claude Code, with a demonstrated ability to use them to accelerate delivery. ## Description We're looking for a Staff Data Engineer to serve as a technical leader on Cribl's Data Engineering team. You will be someone who can set direction for the systems that power analytics, data science, and operational decision-making across the company. You'll operate at the intersection of the modern data stack (Snowflake, SQL, dbt), software and platform engineering (AWS, infrastructure-as-code, orchestration, observability), and our fast-emerging AI/agentic workflows. This is a high-leverage, hands-on leadership role. As a Staff engineer you'll act as a technical lead: partnering with the Data Engineering manager to shape technical strategy and architecture, mentoring and growing junior and mid-level data engineers, and raising the bar on how the team designs, builds, and operates its platform. The pipelines, services, and standards you establish will directly influence how teams across Cribl understand the business, make better decisions, and experiment with new AI-driven experiences. We pride ourselves on fostering a collaborative and innovative culture where team members enjoy working together - whether remotely or over a meal at a foodie hot spot. If you're a seasoned engineer who thrives in an entrepreneurial environment, leads through influence and example, and is eager to help build a company poised for legendary success in the tech industry, we want to hear from you! As An Active Member Of Our Team, You Will... * Serve as a technical lead for the Data Engineering team. Own architecture and design decisions for core data systems and drive reliable, production-grade outcomes. * Partner with stakeholders across functions (Data Analysts, SREs, IT Engineers, and business teams). Clarify requirements, validate outputs, and communicate risks, tradeoffs, and timelines proactively. * Own and operate our self-hosted orchestration platform. Run and evolve our self-managed Prefect deployment and its build/worker system. Own the operational hygiene, upgrade path, and cost/footprint tradeoffs of running orchestration on a hybrid, self-hosted model. * Own Cribl's Snowflake environment. Serve as the subject-matter expert on data modeling, performance, and cost optimization, and own RBAC/permissions design, permissions tooling, and governance. * Build, operate, and monitor the core data tech stack. This covers data pipelines, ingestion services, integrations, and the warehouse, ensuring data is accurate, timely, and trusted, with logging, alerting, and observability as first-class concerns. * Advance the modern data stack. Drive our dbt practice forward, including the in-flight dbt Fusion migration, and own warehouse cost/performance at scale. * Develop cloud-native services and infrastructure on AWS. This includes our ingest/API services (event-driven ingestion, upsert patterns, package reuse) and the IaC that supports them. * Advance our infrastructure-as-code practice (Terraform or similar). Build reusable modules, clean deployment patterns, CI integration, and strong operational hygiene, including self-hosted/hybrid deployment patterns. * Partner with the Data Engineering manager to set technical direction. Shape the platform roadmap, engineering standards, and build-vs-buy/architectural tradeoffs. * Mentor and grow data engineers through code review, pairing, design feedback, and coaching that levels up junior and mid-level engineers. * Support Cribl's growing data science and agentic initiatives. Prepare model-ready datasets, expose features, and integrate AI/LLM workflows into production. * Contribute to secure, compliance-minded engineering practices in collaboration with IT/Security. * We are a remote-first company and work happens across many time-zones - you may be required to occasionally perform duties outside your standard working hours ## Related Videos - [From Messy Queries to Scalable Systems - How Data Engineering actually works](https://www.wearedevelopers.com/videos/100203-from-messy-queries-to-scalable-systems-how-data-engineering-actually-works) - [Infrastructure as Code: The Developer's Secret Weapon](https://www.wearedevelopers.com/videos/1221-infrastructure-as-code-the-developer-s-secret-weapon) - [Developing the Backend with Stefan Lingler, CTO at Shpock](https://www.wearedevelopers.com/videos/100360-developing-the-backend-with-stefan-lingler-cto-at-shpock) - [Enjoying SQL data pipelines with dbt](https://www.wearedevelopers.com/videos/823-enjoying-sql-data-pipelines-with-dbt) - [Implementing Feature Environments with AWS and Terraform](https://www.wearedevelopers.com/videos/531-implementing-feature-environments-with-aws-and-terraform) - [Nest.js - TypeScript in the backend can also be clean](https://www.wearedevelopers.com/videos/1033-nest-js-typescript-in-the-backend-can-also-be-clean) ## Related Articles - [Highest Paying Tech Companies for Developers](https://www.wearedevelopers.com/magazine/220-highest-paying-tech-companies-for-developers) - [Making Data Warehouses Fast: A Developer’s Story](https://www.wearedevelopers.com/magazine/107-making-data-warehouses-fast-a-developer-s-story) - [How We Built a Worry-Free System That Runs for 10+ Years – And What We’d Do Again](https://www.wearedevelopers.com/magazine/751-how-we-built-a-worry-free-system-that-runs-for-10-years-and-what-we-d-do-again) - [Dev Digest 120 - Apple and peers](https://www.wearedevelopers.com/magazine/455-dev-digest-120-apple-and-peers) - [Fully Remote Software Engineer Jobs](https://www.wearedevelopers.com/magazine/447-fully-remote-software-engineer-jobs) - [Best US AI Conferences for CTOs in 2026: Build vs. Buy, Vendor Evaluation, and Peer Intelligence](https://www.wearedevelopers.com/magazine/736-best-us-ai-conferences-for-ctos-in-2026-build-vs-buy-vendor-evaluation-and-peer-intelligence)