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Allica Bank

Analyst, Lending Models

Posted 23 Days Ago
Be an Early Applicant
Remote or Hybrid
2 Locations
Mid level
Remote or Hybrid
2 Locations
Mid level
Develop, implement, monitor, and optimize statistical, machine learning, and credit risk models supporting automated lending decisions. Responsibilities include data preparation, feature engineering, model validation, policy rule analysis, scorecard monitoring, recalibration, root-cause investigations, process automation, documentation, and governance. The role partners with Credit Risk, Underwriting, Product, Data, Engineering, and Model Risk teams to deliver scalable, controlled decisioning solutions.
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About Allica Bank

Allica is the UK’s fastest growing company - and the fastest-growing financial technology (Fintech) firm ever. Our purpose is to help established SMEs, one of the last major underserved opportunities in Fintech.

Established SMEs are the backbone of local communities - representing over a third of our economy - yet have been largely neglected both by traditional high street banks and modern fintech providers.

Department Description

The Modelling team sits within the Credit Portfolio Management (CPM) function and develops the measurement and decisioning capabilities that support Allica’s lending products. The team builds and owns the bank’s IFRS9 model estate, including PD, LGD, SICR and economic response models, as well as the statistical and machine learning models, credit policy rules and credit-linked GenAI solutions used to support and automate lending decisions.

Role Description

This role will be part of the team building, implementing, monitoring and optimising the models and policy rules behind automated lending decisions. These capabilities are critical to delivering fast, consistent and well-controlled credit decisions, improving the customer journey and managing credit risk as the bank grows.

The role requires the technical ability and practical mindset to take models and decisioning changes from initial problem definition through data identification, preparation and analysis to model development, implementation and ongoing monitoring. The successful candidate will be comfortable moving between structured model development and fast-paced ad-hoc analysis, working closely with Credit Risk, Underwriting, Product, Data, Engineering and Model Risk colleagues. They will communicate complex findings clearly to stakeholders with different levels of technical expertise and work with third-party suppliers where required. We are looking for a hands-on modeller who can turn data into reliable, scalable decisioning solutions and continuously improve how the bank assesses credit risk.

Principal Accountabilities
  • Take a hands-on role in the design, build, implementation and continuous refinement of the statistical and machine learning models that support automated lending decisions.

  • Develop and deploy credit risk models in Python across the full model lifecycle, including data preparation, feature engineering, model fitting, validation, implementation and ongoing performance assessment.

  • Perform ad-hoc analysis to optimise credit policy rules and decisioning flows, using rule-firing, decision and outcome data to identify redundant, overlapping or mis-calibrated rules.

  • Produce regular scorecard and decisioning monitoring covering population stability, discriminatory power, calibration, segment and vintage performance, decision rates, and alignment with underwriting outcomes.

  • Automate monitoring packs and controls, including metrics such as PSI, Gini and KS, so that emerging performance issues and data-quality problems are identified quickly and consistently.

  • Recalibrate or redevelop models as portfolio experience matures, comparing predicted and actual outcomes and adjusting model scaling, score cut-offs or policy thresholds where evidence of drift or mis-calibration exists.

  • Lead root-cause investigations into model, rule or decisioning-flow underperformance by tracing issues through decision logs, data lineage, feature calculations, production pipelines and implementation logic.

  • Build robust, well-controlled and reproducible modelling processes, and drive improvements to the data, tooling and infrastructure required for future model development and deployment.

  • Document models, rules, assumptions, limitations and changes to a high standard, supporting governance, independent validation and stakeholder review.

  • Work closely with Credit Risk, Underwriting, Product, Data and Engineering teams to translate business requirements into practical decisioning solutions, while complying with mandatory policies and maintaining a strong internal control environment.

Personal Attributes & Experience
  • You have at least 4 years’ hands-on risk modelling experience.

  • You have hands-on experience applying statistical modelling techniques such as logistic and linear regression, as well as machine learning models, to solve practical business problems.

  • You are comfortable with large data sets, and data extraction and manipulation using Excel, SQL, Python & BI tools.

  • You have a proven track record with Python coding, and are comfortable using GenAI tools to increase coding productivity.

  • You have a good understanding of credit and lending concepts, preferably in commercial lending.

  • You are driven, self-motivated and passionate about building great solutions for the bank.

  • You can work independently and are flexible to adapt quickly to changing priorities within a very dynamic environment.

  • You work well with stakeholders across the business, and collaboratively within the team.

  • You have strong skills in writing technical documents as well as business focussed documents to get buy in from various stakeholders.

  • Experience of implementation of models into software applications is highly desirable.

  • Prior experience in this area matters for this role. If you believe you are a strong fit for the role, but don’t quite meet one of the requirements above – if you think you can suitably overcome that, then please apply anyway.

Working at Allica Bank

At Allica Bank we want to ensure our employees have the right tools and environment in which to succeed in their role and in support of our customers.

Our employees are at the heart of everything we do, so our benefits are designed with you in mind:

  • Full onboarding support and continued development opportunities

  • Options for flexible working

  • Regular social activities

  • Pension contributions

  • Discretionary bonus scheme

  • Private health cover

  • Life assurance

  • Family friendly policies including enhanced Maternity & Paternity leave

Don’t tick every box?

Don’t worry if you don’t have all the skills or requirements listed on the job description. If you think you’ll be a good fit, we’d still love to hear from you!

Flexible working

We know the ‘9-to-5’ isn’t right for everyone. That’s why Allica Bank is fully committed to flexible and hybrid working. Please let us know what is best for you and, if we can, we will do our best to accommodate.

Diversity

We’re a diverse bunch here at Allica, with all kinds of experiences, backgrounds and lifestyles. Our openness and differences make us stronger, and we want everybody to feel comfortable bringing as much of themselves to work with them as they like.

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