Granica
Forward Deployed Engineer
- Location
- San Francisco Bay Area, US
- Arrangement
- On-site
- Employment type
- Full-time
- Posted
- 17 September 2026 (13 days ago)
Checked 13 days agoApplications go to the employer, never to RoleSprint
About this role
Location: Mountain View, CA — On-site
ABOUT GRANICA
Granica is building the efficiency and intelligence layer for enterprise AI.
Enterprises already operate enormous proprietary data estates and increasingly build AI systems on top of them, but the underlying infrastructure remains fragmented, expensive, and inefficient.
Granica is building across three related layers:
- Crunch — efficiency for enterprise data
- Large Tabular Models — intelligence for enterprise structured data
- Myelin — efficiency for stateful, long-running AI agents
Crunch continuously optimizes large enterprise lakehouse environments across technologies such as Apache Spark, Iceberg, Delta Lake, Parquet, Snowflake, and Databricks — reducing storage and compute cost while improving data layout and operational efficiency.
Granica has already processed hundreds of petabytes of customer data for companies including Snap, Pinterest, Lyft, and ShareChat, with customers able to validate meaningful savings within weeks.
ABOUT THE ROLE
Granica is hiring a Forward Deployed Engineer to become the technical bridge between our customers, Engineering, Product, and GTM teams.
You will work directly inside complex enterprise data environments to understand workloads, investigate performance and cost problems, deploy Granica, run technical evaluations, and turn the results into clear customer recommendations.
This is a highly hands-on role. You should be comfortable moving from a customer conversation to Spark debugging, SQL analysis, performance benchmarking, architecture decisions, and an executive-facing explanation of the technical and economic tradeoffs.
As one of Granica’s first dedicated Forward Deployed Engineers, you will also help define how the function operates as we scale.
WHAT YOU’LL DO
- Lead technical discovery with enterprise data, infrastructure, and AI teams
- Understand customer data architecture, workloads, constraints, and business priorities
- Deploy and configure Granica in complex customer-controlled environments
- Investigate performance, reliability, storage, and compute-cost problems across large data platforms
- Debug and optimize Apache Spark workloads and related distributed-data systems
- Analyze table layouts, file structure, partitioning, compaction, and data-maintenance behavior
- Design and execute technical evaluations and proofs of value with clear success criteria
- Establish trustworthy measurements and translate results into defensible customer recommendations
- Explain technical tradeoffs across performance, cost, reliability, and operational complexity
- Partner with Account Executives during technical discovery, evaluations, and enterprise sales cycles
- Present findings and business value to engineers, architects, and executive stakeholders
- Translate recurring customer problems into Product and Engineering priorities
- Build repeatable deployment, troubleshooting, benchmarking, and evaluation playbooks
WHAT WE’RE LOOKING FOR
- 5+ years in Forward Deployed Engineering, Data Engineering, Solutions Architecture, Sales Engineering, or a similarly hands-on technical role
- Strong hands-on Apache Spark experience, including production workloads, debugging, performance tuning, and distributed execution behavior
- Strong understanding of distributed data systems and modern cloud data infrastructure
- Experience with lakehouse technologies such as Apache Iceberg, Delta Lake, Parquet, Hive, or comparable systems
- Strong SQL skills and proficiency in Python, Scala, Java, or another relevant programming language
- Experience diagnosing performance or reliability problems using data and experimentation
- Ability to reason about infrastructure economics, including storage, compute, and performance tradeoffs
- Strong customer communication skills and the ability to explain technical recommendations clearly
- High ownership and comfort operating without an established playbook
- Ability to work from our Mountain View office five days per week and travel to customer locations when needed
WHY JOIN GRANICA
- Work directly on some of the largest enterprise data environments in production
- Solve technically difficult problems where improvements can translate directly into substantial customer savings
- Work across Spark, lakehouse systems, distributed infrastructure, AI, and emerging enterprise data architectures
- Partner directly with customers, company leadership, Product, Engineering, and GTM
- Help build Granica’s Forward Deployed Engineering function from the ground up
- Influence both product direction and how Granica engages technically with customers
- Join a small team working at the intersection of enterprise data infrastructure and AI
COMPENSATION & BENEFITS
- Competitive salary, meaningful equity, and performance bonus for top performers
- 401(k) with company match, comprehensive health coverage, and unlimited PTO
- Daily catered meals in our Mountain View office
- Support for research, publication, and conference participation
At Granica, you'll help build the next generation of enterprise AI—from exabyte-scale data infrastructure, Large Tabular Models (LTMs), and stateful AI agents. Together, we're creating the infrastructure that enables enterprises to own their data, own the intelligence built on it, and scale both efficiently.
Work location
- San Francisco Bay Area, US
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About this listing
Published on Ashby under the board identifier Granica, which is the name the employer’s own job board carries. RoleSprint has not verified the company’s registered or trading name, so it is shown exactly as published rather than tidied up.
RoleSprint is not the employer and not a recruiter. Applications are made on the employer’s own site and never reach us; what RoleSprint does is help you decide whether a role is worth your time and prepare for it if it is.
Published 17 September 2026, last checked 13 days ago. A posting stops being advertised here 90 days after the employer published it, and one the employer takes down is marked closed rather than quietly removed.