Full Stack Engineer III/IV
Posted: By:Hiring Kenya
About the Role
- This role sits within IDinsight’s Data Science and Engineering team and is best suited for a hands-on, full-stack engineer who enjoys operating with a high degree of autonomy. You will work closely with data scientists, data engineers, domain experts, and partners to translate analytical and AI capabilities into impactful software products.
- Successful candidates are comfortable working through ambiguity, making pragmatic technical decisions, and owning the full lifecycle of features- from early problem framing and design to deployment and ongoing improvement in live environments. The work spans frontend, backend, and data integrations, with a strong emphasis on building tools that are intuitive, reliable, and loved by users.
As a full-stack engineer, the day-to-day work may include:
- Understand workflows, decision points, and constraints, and translate them into clear technical requirements to build web products used in social and policy contexts.
- Making thoughtful decisions about application architecture, data flows, integrations, and user-facing behavior to support scalable, production-grade products.
- Design and implement user-facing products such as dashboards, web platforms, and chat-based tools, working across frontend interfaces, backend services, and data integrations.
- Designing and implementing automated data ingestion pipelines that pull from databases, APIs, and external sources, and transform them into reliable, application-ready inputs.
- Integrate analytics or generative AI components into applications to support workflows such as information retrieval, agent-based decision-making, and automations.
- Ship tools to production, monitor usage and performance, debug issues, and refine both frontend and backend based on real-world feedback.
- Work closely with other engineers, product owners, and domain experts to review code, plan releases, and deliver features end-to-end.
- Write blog posts or present on lessons learned.
- Support teammates through formal and informal coaching and collaboration that enables continuous learning and improvement for the team.
Required Technical Qualifications
- Experience of at least 5+ years in software engineering especially web development, with proficiency in Python for building production systems
- Demonstrated ability to test, deploy, and operate user-facing products (such as dashboards, chatbots, or web applications) in production environments
- Strong background in designing and implementing backend services, including APIs, business logic, and data persistence using frameworks like NextJS or FastAPI
- Expertise in modern frontend frameworks (e.g., React or similar)
- Familiarity with cloud infrastructure and deployment workflows (e.g., AWS or GCP, Docker, CI/CD pipelines)
- Experience integrating external systems and APIs, especially foundational Large Language Models, into applications
- Ability to work directly with clients to scope problem statements, define solution requirements, and deliver end-to-end solutions
- Clear written and verbal communication skills for collaborating with technical and non-technical stakeholders internally and externally
Other required qualifications:
- Proven ability to work independently on ambiguous problems that involve both people and technology
- Experience contributing to shared codebases, libraries, or platform components
- Strong oral and written communication skills in English. Fluency in languages spoken in countries where IDinsight works is a plus.
- Deeply passionate about evidence-informed policy, global development and improving lives in disadvantaged populations.
- Ability and interest in sharing knowledge, mentoring others, presenting work and reviewing the work of others.
- Open-minded self-starter who will thrive while tackling new, unusual and unpredictable challenges.
Preferred Qualifications
The most competitive applicants will also have experience in one or more of the following:
- Experience living and working in developing country settings.
- Demonstrated ability to secure funding for technology-for-good initiatives, including grants, funded pilots, or innovation challenge awards.
- Experience with AI engineering and evaluations.
- Experience applying data science methods, such as optimization, unsupervised learning, LLMs, or working with specialized data types (e.g., GIS software like QGIS, satellite imagery).
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