--- title: 'Senior Data Engineer at DevSavant Inc.' canonical: 'https://feeny.ai/job/senior-data-engineer-devsavant-inc-latin-america-2g2sf580ektn' type: 'job' last_seen: '2026-09-06' --- # Senior Data Engineer at DevSavant Inc. - **Company:** DevSavant Inc. - **Location:** Latin America - **Employment:** full-time - **Posted:** 2026-07-23 - **Last confirmed live:** 2026-09-06 - **Apply:** https://jobs.ashbyhq.com/devsavant/545fa7f9-7ec9-4120-be3e-ed6ab8d0c58d ## Job description ## ABOUT DEVSAVANT DevSavant is an operating partner for startups and growth-stage companies, helping them turn ambition into execution. We support founders and leadership teams with product engineering and global staffing, from early prototypes and MVPs to scaling high-performing teams. Our vetted talent across LATAM and Asia embeds directly into client teams, operating as true extensions rather than external vendors. With over 8 years working in venture-backed ecosystems, DevSavant is trusted to accelerate delivery, scale teams efficiently, and support companies as they reach their next milestone. ## ABOUT THE ROLE We are seeking a Senior Data Engineer to join a cross-functional team working on scalable data systems and analytics infrastructure. This is an individual contributor role focused on building, maintaining, and optimizing data pipelines and data models that power analytics and business-critical decision-making. The role requires a strong technical generalist mindset, combining software engineering principles with deep data expertise. You will work closely with Data Science, Data Ops, and business stakeholders to ensure data is accurate, accessible, and structured for self-service analytics. The ideal candidate is someone who enjoys working with complex datasets, simplifying systems, and building scalable data infrastructure from the ground up. ## KEY RESPONSIBILITIES ## DATA ENGINEERING & PIPELINE DEVELOPMENT - Own, build, maintain, and optimize scalable data pipelines - Design and implement data architectures that support analytics and operational use cases - Work with large, complex datasets to meet evolving business requirements - Ensure data quality, reliability, and performance across systems - Apply best practices for developing specialized datasets for analytics and modeling - Continuously improve data workflows, pipelines, and infrastructure ## DATA MODELING & ANALYTICS ENABLEMENT - Develop a deep understanding of core data models and business logic - Partner with Data Science and Data Ops teams to maintain trusted, well-documented datasets - Enable self-service analytics by structuring and organizing data effectively - Support analytical workflows and downstream consumption of data - Assist analysts with query development and dataset preparation ## CROSS-FUNCTIONAL COLLABORATION - Work with a wide range of stakeholders to gather requirements and translate them into technical solutions - Communicate complex technical concepts clearly to both technical and non-technical audiences - Collaborate closely with engineering, analytics, and product teams - Contribute to documentation and knowledge sharing across teams ## INFRASTRUCTURE & SYSTEMS DESIGN - Contribute to the design of scalable and maintainable systems - Optimize data delivery and infrastructure for performance and scalability - Support integration across multiple data platforms and tools - Maintain and improve existing systems, including search and indexing solutions ## DEBUGGING, OPTIMIZATION & RELIABILITY - Independently troubleshoot complex systems and resolve data-related issues - Perform root cause analysis and implement long-term fixes - Improve system reliability and performance through monitoring and optimization - Ensure stability and efficiency of data platforms ## CORE TECHNICAL STACK ## DATA & BACKEND - SQL for querying, transformation, and data modeling - Python or other general-purpose programming languages (e.g., JavaScript/TypeScript, Java, C#, Go, Scala) - Experience with data pipeline tools such as Spark and DBT - Data warehouses such as BigQuery, Snowflake, or Databricks ## DATA ORCHESTRATION & PROCESSING - Workflow orchestration tools such as Airflow or Dagster - Experience handling large-scale data processing and transformations - Familiarity with batch and/or streaming data systems ## INFRASTRUCTURE & CLOUD - Cloud platforms such as GCP or AWS - Infrastructure as Code tools (Terraform, Pulumi, or CloudFormation) - Experience designing scalable and maintainable systems ## ADDITIONAL TOOLS & SYSTEMS - Experience with backend engineering and web services is a plus - Familiarity with analytics and data visualization ecosystems - Exposure to transaction, receipt, or viewership data is beneficial ## REQUIRED QUALIFICATIONS - 5+ years of experience in software engineering, with at least 3 years focused on data engineering or data infrastructure - Strong expertise in SQL and working with relational databases - Experience building and maintaining scalable data pipelines - Proficiency in at least one general-purpose programming language (Python preferred) - Experience with modern data stack tools (e.g., Spark, DBT, Airflow/Dagster) - Strong debugging and problem-solving skills in complex systems - Experience working with cloud data warehouses (BigQuery, Snowflake, or Databricks) - Ability to design data systems that support analytics and business intelligence - Strong communication skills and ability to work cross-functionally - Experience documenting and simplifying complex systems ## NICE TO HAVE - Experience with backend engineering and API development - Experience with Infrastructure as Code (IaC) tools - Exposure to system design for customer-facing or high-scale platforms - Familiarity with analytics-heavy environments and data-driven products - Experience working with large-scale, real-world datasets (e.g., transactions, behavioral data) ## QUALITIES WE'RE LOOKING FOR - Ownership mindset: Ability to take responsibility and drive systems end-to-end - Technical versatility: Strong foundation as a software engineer with data expertise - Problem-solving focus: Ability to navigate ambiguity and solve complex challenges - Communication skills: Clear and effective collaboration across teams - Execution-driven: Ability to move quickly and deliver results in a fast-paced environment - Continuous improvement: Desire to refine systems, processes, and technical approaches ## About DevSavant Inc. ## Company Overview - **One-liner**: DevSavant is a nearshore talent and product engineering partner that connects top LATAM and Asian professionals with US-based B2B tech and AI companies, helping startups turn ideas into revenue-driving software. - **Entity Type**: Private (privately held; backed by relationships with Savant Growth and Kennet Partners) - **Headquarters**: San Mateo, California, United States (with additional offices in Medellín, Colombia) - **Founded**: 2020 (some sources mention 2021 as the formal launch year) - **Founders**: Daniel Peña (CEO), Javier Rojas, Erik Filipek ## Core Business - **Primary industry**: Software Development / IT Services and IT Consulting - **Target customers**: US-based B2B tech and AI companies at any stage (early-stage startups to Series B and companies exceeding $300M ARR), as well as VC, PE, and growth equity portfolio firms. - **Mission**: "Turn ambition into execution, and help every company move confidently toward its next milestone." [devsavant.com/about-devsavant](https://devsavant.com/about-devsavant/) ## Products & Services - **Global Staffing (Staff Augmentation)**: Provides fully vetted Mid-Level and Senior Engineers, QA, AI, Data, Project Managers, and support professionals from LATAM and Asia who embed seamlessly into client teams. - **Product Engineering**: Consulting-led discovery combined with AI-first engineering to deliver rapid prototypes, MVPs, and scalable products—from concept to production. - **AI Integration**: Custom AI solutions including automation, copilots, custom models, LLM integrations, and workflow enhancements. ## Market Standing - **Valuation/Market Cap**: Not publicly available (private company) - **Key Metric**: ~76–93 employees (LinkedIn reports 76 with 11.9% YoY growth; Built In SF reports 93). Revenue not disclosed. - **Notable Investors/Partners**: Works closely with Savant Growth and Kennet Partners, as well as a network of VC, PE, and growth equity firms. - **Growth Signals**: Expanded to serve Series A clients in 2022; operates across 15 countries (primarily Colombia, Argentina, Brazil, Mexico); headcount grew ~12% year-over-year; active job postings (10 open positions as of mid-2025). ## Competitive Advantages - Access to high-quality, pre-vetted talent from LATAM and Asia at significantly lower costs than US-based alternatives. - Proprietary "Wow Profiles" vetting method that identifies growth-minded professionals suited for fast-moving tech environments. - Deep domain expertise in B2B SaaS and AI markets, built over 7+ years inside the VC/investment ecosystem. - Rapid deployment: first candidates presented within 2 weeks; full integration into client workflows, standups, and tooling. - Flexible engagement: scale teams up or down with transparent costs and no long-term lock-ins. ## Strategic Focus - Strengthening its AI-first engineering capability to accelerate product delivery and reduce risk for clients. - Expanding its nearshore talent pipeline across LATAM and Asia, particularly for high-demand roles (Data Science, Python, Web SDE, etc.). - Deepening partnerships with venture capital and private equity firms to become the default talent partner for their portfolio companies. ## Why Work Here - **Work model**: Hybrid/on-site presence in San Mateo and Medellín; other roles are remote within LATAM. Built In SF notes "Employees work from physical offices" but typical time on-site is listed as "None", suggesting flexibility. [builtinsf.com/company/devsavant](https://www.builtinsf.com/company/devsavant) - **Culture**: Described as innovative, agile, evolving, and valuing harmony and respect. Engineers embed directly into client teams, gaining exposure to cutting-edge B2B SaaS and AI products. - **Growth opportunities**: Access to US tech company clients, exposure to venture-backed ecosystems, and roles across engineering, AI, product, and customer success. - **Perks**: Not explicitly listed, but competitive compensation for LATAM talent, clear career progression paths, and the chance to work on high-impact projects from early-stage MVPs to enterprise-scale platforms. ## Sources 1. [devsavant.com](https://devsavant.com/) 2. [devsavant.com/about-devsavant](https://devsavant.com/about-devsavant/) 3. [linkedin.com/company/devsavant](https://www.linkedin.com/company/devsavant) 4. [builtinsf.com/company/devsavant](https://www.builtinsf.com/company/devsavant) 5. 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