Senior AI Engineer

Posted 5 Days Ago
Be an Early Applicant
Hiring Remotely in Vietnam
Remote
Senior level
Fintech
The Role
Own evaluation and assurance for data and LLM-driven products: build a reusable framework for deterministic and probabilistic checks, create golden datasets and LLM judges, run retrieval and answer-quality evaluation, integrate evaluation as CI release gates, monitor agent behaviour, and mentor engineers.
Summary Generated by Built In
The Job in short

The Data Enablement team is here to enable every team in the organisation with their data needs. Our job starts the moment that data enters our platform and ends when it reaches whoever needs it. We are a small, senior team of data and AI engineers, working across customer data, product knowledge, and the data the organisation runs on.

We bring data in, reconcile it into one version people can rely on, and make it available to the right audience. Increasingly that audience is agents as well as people, so everything we build has to work for both. Two things must hold at every step: that only the right people can see it, and that we can prove it is correct. The second is where this role sits.

As a Senior AI Engineer you own the promise that what we serve is right. You are the leading voice on assurance and evaluation across everything the team delivers, from the source through to the answer someone reads. Product calls this assurance. Engineers call it evaluation. It is the same job.

In practice it is two kinds of checks and one framework. Deterministic checks on structure, completeness and freshness. Probabilistic checks on whether a generated answer is grounded and correct, including the judges and the golden datasets behind them. Today those checks exist per project and per tool, built by whoever needed them. You turn them into one configurable framework, reusable across sources, reporting into a single view of platform health. Product knowledge is where it starts, because it is the one journey we run end to end ourselves, from ingesting the source to the answer a customer reads.

That framework is the first phase, not the ceiling. Once it is running and trusted, the same judgement applies to everything else we build: retrieval quality, agent behaviour, and the systems that serve them. We are hiring for the authority you bring on assurance and evaluation, because it is the capability that decides how far the rest can go.

Meet the job

The list below describes the AI Engineer discipline at Backbase. In Data Enablement your first focus is the evaluation and assurance responsibilities that follow. The wider discipline opens up once that foundation is in place.

  • Agentic Orchestration: design and implement complex agentic workflows and assistant platforms using the LangChain ecosystem.
  • Advanced Retrieval: develop and optimise RAG and GraphRAG pipelines to give agents deep, contextual domain knowledge.
  • System Design: architect scalable, distributed AI services that integrate into our Kubernetes environments.
  • Agentic Ops (AIOps): implement robust monitoring, tracing and evaluation frameworks (LangSmith, Langfuse, Promptfoo).
  • Skill Integration: build and manage Skills and toolsets for agents, including the Model Context Protocol (MCP).
  • Human-in-the-Loop: design HIL patterns so high-stakes financial decisions remain governed and accurate.
  • Mentorship: provide technical leadership to junior engineers and contribute to internal AI strategy and best practices.
  • Evaluation datasets: Build them from acceptance criteria and expert grounding, split dev and test on different samples so tuning and grading never share data, and freeze golden sets.
  • LLM judges: Run failure-mode analysis on each acceptance criterion, map it to measurable metrics, and write and iterate the judge prompts.
  • Calibration: Rate judges against human ratings and measure agreement as true positive and true negative rate. A judge does not gate a release until its agreement with human raters clears an agreed threshold.
  • Retrieval evaluation: Judge chunk relevance, corpus coverage and freshness separately from answer quality, and run the quality gate that blocks a bad release.
How about you
  • A Bachelor's or Master's degree in Computer Science, Data Science or a related field.
  • 5+ years of professional engineering experience, including at least one LLM-based system you took to production.
  • Excellent written and verbal communication skills in English.
  • Agent frameworks: experience with an agent framework such as LangChain or LangGraph, or a credible equivalent, for production-grade LLM applications.
  • Agentic experience: hands-on experience building agents or assistant platforms using Tools, Skills and MCP.
  • AI infrastructure: strong knowledge of RAG architectures. Awareness of graph-based retrieval approaches is a plus.
  • Python: strong Python, including clean, maintainable asynchronous code.
  • Observability and Evaluation: experience with Agentic Ops platforms such as Langfuse, LangSmith or Promptfoo.
  • Measurement discipline. Comfortable with true and false positive rates, thresholds and regression baselines, and able to explain why a one-sided judge is worse than none.
  • Dataset construction discipline. Test cases from acceptance criteria, dev and test splits, frozen golden sets, and preventing leakage.
  • The temperament to be the gate. Comfortable saying a result is not yet trustworthy, and making that case to the people who own the release. Proactive, autonomous and self-sufficient.
  • Evaluations in CI as real release gates rather than advisory reports.
Strong pluses
  • System architecture: designing and managing scalable distributed services in a Kubernetes ecosystem.
  • Java Knowledge: experience with Java, particularly integrating AI services with Backbase's core Java backend.
  • DevOps Culture: familiarity with CI/CD pipelines and cloud-native logging and monitoring.
  • Fintech Experience: understanding of the security and compliance requirements unique to banking and financial services.
  • A testing or quality engineering background. The instinct transfers better than the domain does.
  • Production monitoring of AI systems: online judges over live traces, review sampling and alerting.
Our tech stack
  • Languages: Python (primary), Java (secondary).
  • Frameworks: LangChain, LangGraph, FastAPI.
  • Ops and tools: LangSmith, Langfuse, Promptfoo, MCP.
  • Deployment: Docker, Kubernetes, AWS/Azure.

Skills Required

  • Bachelor's or Master's degree in Computer Science, Data Science, or related field
  • 5+ years professional engineering experience including at least one LLM-based system taken to production
  • Excellent written and verbal communication skills in English
  • Experience with agent frameworks such as LangChain or LangGraph (or equivalent) for production-grade LLM applications
  • Hands-on experience building agents/assistant platforms using Tools, Skills and Model Context Protocol (MCP)
  • Strong knowledge of RAG architectures; awareness of graph-based retrieval approaches
  • Strong Python skills, including writing clean, maintainable asynchronous code
  • Experience with Agentic Ops / observability platforms (Langfuse, LangSmith, Promptfoo)
  • Measurement discipline: comfortable with true/false positive rates, thresholds, regression baselines
  • Dataset construction discipline: test cases from acceptance criteria, dev/test splits, frozen golden sets, leakage prevention
  • Temperament to act as quality gate: able to block releases until evaluation standards are met
  • Integrate evaluations into CI as release gates rather than advisory reports
  • System architecture experience designing/managing scalable distributed services in Kubernetes
  • Java experience, particularly integrating AI services with Java backends
  • Familiarity with CI/CD pipelines, cloud-native logging and monitoring (DevOps culture)
  • Fintech or banking security and compliance experience
  • Testing or quality engineering background
  • Experience with production monitoring of AI systems: online judges, live-trace sampling and alerting

Backbase Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Backbase and has not been reviewed or approved by Backbase.

  • Fair & Transparent Compensation Pay is considered fair in certain U.S. roles, with strong offers in senior engineering, solutions architecture, and sales tracks in higher‑paying markets. In some U.S. contexts, compensation is described as fair for the job.
  • Leave & Time Off Breadth PTO is described as generous in the U.S., with separate sick time and paid holidays contributing to a supportive time‑off setup.
  • Wellbeing & Lifestyle Benefits Hybrid/remote work programs, office perks like snacks, and learning‑budget messaging provide lifestyle flexibility and support beyond baseline coverage.

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The Company
HQ: Amsterdam
951 Employees
Year Founded: 2003

What We Do

Backbase is a fast growing fintech software provider that empowers financial institutions to accelerate their digital transformation and effectively compete in a digital-first world. We are the creators of the Backbase Omni-Channel Banking Platform, a state-of-the-art digital banking software solution that unifies data and functionality from traditional core systems and new fintech players into a seamless digital customer experience. We give financials the speed and flexibility to create and manage seamless customer experiences across any device, and deliver measurable business results. We believe that superior digital experiences are essential to stay relevant, and our software enables financials to rapidly grow their digital business. More than 120 financials around the world have standardized on the Backbase omni-channel banking platform to streamline their digital sales and self-service operations across all digital touchpoints. Our customer base includes ABN AMRO, Bank ABC, Barclays, BPI, CheBanca!, Citizens Lightstream, Credit Suisse, Fidelity, HDFC, IDFC, KeyBank, Ila Bank, Me Bank, Navy Federal, PostFinance, RBC, RBS, Standard Bank, Societe Generale, Truist, U Bank and Westpac. Industry analysts Celent, Gartner, Forrester and Ovum recognize Backbase as an industry leader in terms of omni-channel banking platform capabilities, and award the company high marks for its deep focus on customer experience management and unparalleled speed of implementation. Forrester named us a leader in the Forrester Wave for Omni-Channel Banking and Ovum nominates Backbase as the market leading provider of next-generation digital channel banking platforms. Backbase was founded in 2003, is privately funded, with headquarters in Amsterdam (HQ Global) and Atlanta (HQ Americas) and regional operations in Boisse, Cardiff, Dubai, Kraków, Mexico City, New York, Toronto, Singapore, Sydney and Tokyo.

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