Solution Engineer
2026-09-14T10:24:25+00:00
digital divide data
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https://www.digitaldividedata.com/
FULL_TIME
Nairobi
Nairobi
00100
Kenya
Information Technology
Computer & IT, Science & Engineering
2026-09-20T17:00:00+00:00
8
Background
DDD believes talent has no boundaries--and opportunities shouldn’t either. In 2001, we saw the need to bring tech skills and living-wage work to men and women in underserved communities in Asia. It was here that DDD helped plant the seed for a socially responsible outsourcing practice known as impact sourcing.
Responsibilities
- Design and build robust data ingestion pipelines, transforming raw CSV/TSV data into structured, queryable datasets.
- Model custom entities and map diverse data sources into standardised target schemas.
- Build and manage data environments using SQLite, Google Cloud SQL and BigQuery.
- Develop and maintain Dockerised services for data loading, embedding generation and data-serving applications.
- Deploy and operate production workloads on Google Cloud Run, with a focus on scalability, reliability and high availability.
- Work across Redis, VPC networking, Artifact Registry and Cloud Storage.
- Implement secure cloud architectures using Cloud IAM, VPC and Cloud Run ingress controls.
- Automate data workflows and deployments through GitHub Actions, including scheduled ingestion, ID mapping, embedding generation and container builds.
- Build and integrate AI-powered capabilities, including natural-language querying, semantic search, embeddings and LLM-powered workflows.
- Contribute to emerging agentic architectures and integrations, including technologies such as Model Context Protocol (MCP).
Qualifications
- 2+ years’ experience in data engineering, cloud engineering or backend development.
- Strong Python development skills, including practical experience with Pandas.
- Solid experience with Docker and containerised applications.
- Strong working knowledge of Google Cloud Platform, particularly cloud compute, managed databases, data warehousing, networking and IAM.
- Strong SQL skills and experience working with both relational and analytical data stores.
- Experience designing, building and consuming REST APIs.
- A strong engineering mindset, with the ability to work independently, troubleshoot complex problems and take ownership from development through to production.
Additional Information
It’s a plus if you have
Experience with AI/ML engineering, particularly embeddings, Sentence Transformers or LLM applications.
Exposure to agentic frameworks, MCP or other emerging AI integration patterns.
Experience with Flask and Jinja.
Familiarity with WSL and Google Cloud Shell.
- Design and build robust data ingestion pipelines, transforming raw CSV/TSV data into structured, queryable datasets.
- Model custom entities and map diverse data sources into standardised target schemas.
- Build and manage data environments using SQLite, Google Cloud SQL and BigQuery.
- Develop and maintain Dockerised services for data loading, embedding generation and data-serving applications.
- Deploy and operate production workloads on Google Cloud Run, with a focus on scalability, reliability and high availability.
- Work across Redis, VPC networking, Artifact Registry and Cloud Storage.
- Implement secure cloud architectures using Cloud IAM, VPC and Cloud Run ingress controls.
- Automate data workflows and deployments through GitHub Actions, including scheduled ingestion, ID mapping, embedding generation and container builds.
- Build and integrate AI-powered capabilities, including natural-language querying, semantic search, embeddings and LLM-powered workflows.
- Contribute to emerging agentic architectures and integrations, including technologies such as Model Context Protocol (MCP).
- Python
- Pandas
- Docker
- Google Cloud Platform
- SQL
- REST APIs
- AI/ML engineering
- Embeddings
- Sentence Transformers
- LLM applications
- Flask
- Jinja
- 2+ years’ experience in data engineering, cloud engineering or backend development.
- Strong Python development skills, including practical experience with Pandas.
- Solid experience with Docker and containerised applications.
- Strong working knowledge of Google Cloud Platform, particularly cloud compute, managed databases, data warehousing, networking and IAM.
- Strong SQL skills and experience working with both relational and analytical data stores.
- Experience designing, building and consuming REST APIs.
- A strong engineering mindset, with the ability to work independently, troubleshoot complex problems and take ownership from development through to production.
- Experience with AI/ML engineering, particularly embeddings, Sentence Transformers or LLM applications.
- Exposure to agentic frameworks, MCP or other emerging AI integration patterns.
- Experience with Flask and Jinja.
- Familiarity with WSL and Google Cloud Shell.
JOB-6aa7cb59e34c3
Vacancy title:
Solution Engineer
[Type: FULL_TIME, Industry: Information Technology, Category: Computer & IT, Science & Engineering]
Jobs at:
digital divide data
Deadline of this Job:
Sunday, September 20 2026
Duty Station:
Nairobi | Nairobi
Summary
Date Posted: Monday, September 14 2026, Base Salary: Not Disclosed
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JOB DETAILS:
Background
DDD believes talent has no boundaries--and opportunities shouldn’t either. In 2001, we saw the need to bring tech skills and living-wage work to men and women in underserved communities in Asia. It was here that DDD helped plant the seed for a socially responsible outsourcing practice known as impact sourcing.
Responsibilities
- Design and build robust data ingestion pipelines, transforming raw CSV/TSV data into structured, queryable datasets.
- Model custom entities and map diverse data sources into standardised target schemas.
- Build and manage data environments using SQLite, Google Cloud SQL and BigQuery.
- Develop and maintain Dockerised services for data loading, embedding generation and data-serving applications.
- Deploy and operate production workloads on Google Cloud Run, with a focus on scalability, reliability and high availability.
- Work across Redis, VPC networking, Artifact Registry and Cloud Storage.
- Implement secure cloud architectures using Cloud IAM, VPC and Cloud Run ingress controls.
- Automate data workflows and deployments through GitHub Actions, including scheduled ingestion, ID mapping, embedding generation and container builds.
- Build and integrate AI-powered capabilities, including natural-language querying, semantic search, embeddings and LLM-powered workflows.
- Contribute to emerging agentic architectures and integrations, including technologies such as Model Context Protocol (MCP).
Qualifications
- 2+ years’ experience in data engineering, cloud engineering or backend development.
- Strong Python development skills, including practical experience with Pandas.
- Solid experience with Docker and containerised applications.
- Strong working knowledge of Google Cloud Platform, particularly cloud compute, managed databases, data warehousing, networking and IAM.
- Strong SQL skills and experience working with both relational and analytical data stores.
- Experience designing, building and consuming REST APIs.
- A strong engineering mindset, with the ability to work independently, troubleshoot complex problems and take ownership from development through to production.
Additional Information
It’s a plus if you have
Experience with AI/ML engineering, particularly embeddings, Sentence Transformers or LLM applications.
Exposure to agentic frameworks, MCP or other emerging AI integration patterns.
Experience with Flask and Jinja.
Familiarity with WSL and Google Cloud Shell.
Work Hours: 8
Experience in Months: 24
Level of Education: bachelor degree
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