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Data Scientist / Machine Learning Engineer

Role overview

Qualifications

  • 2+ years of professional experience building, deploying, monitoring, and maintaining production ML models
  • Strong Python programming skills along with advanced SQL capabilities
  • Experience utilizing AWS SageMaker or equivalent enterprise ML platforms
  • Proficient with Git for version control

Responsibilities

  • Develop, deploy, and maintain production-grade Machine Learning models in cloud environments
  • Perform Exploratory Data Analysis (EDA) and design feature engineering pipelines
  • Build, maintain, and optimize data pipelines for ML models in production
  • Monitor model performance, health, and drift post-deployment

About the company

In All Media logo

In All Media

IT Services & IT Consulting

In All Media is a trailblazing Nearshore Managed Service Provider, laser-focused on Team Augmentation for software development. We craft bespoke, highly specialized teams that effortlessly merge with our client's processes and culture, delivering unparalleled results. Our Austin headquarters anchors our global reach, with a diverse talent pool distributed across the Americas, Europe, and Asia. This allows us to execute our Nearshore model efficiently in all three regions. Since our inception, we have employed an agile, remote, and distributed model, allowing us to tap into the world's finest technical talent, regardless of location, adapting methodologies like SAFe to perfectly align with our client's needs. We source our exceptional talent from Coderfull, our exclusive community boasting over 5,000 rigorously vetted engineers. Our teams are formed and trained within this community, with specialized interest groups focusing on cutting-edge technologies making In All Media a true Community Lead Enterprise. Our Community teams have a proven track record of collaboration, in-depth knowledge of each other's strengths, and exceptional team dynamics. This synergy results in rapid onboarding, heightened productivity, and an unwavering commitment to success. Our teams embrace flexibility and benefit from a thriving community spirit, abundant career growth opportunities, and a stable compensation model. Our proprietary Community Management platform streamlines talent management, empowering them to efficiently handle daily work, career development, and administrative tasks. AI has captivated our community with its potential to revolutionize our industry so we are harnessing AI to augment, not replace, human skills investing heavily in AI tools, training, and partnerships, to increase our team’s productivity and guide our clients toward a future-ready AI adoption strategy. Experience the In All Media difference today.

Company details

IndustryIT Services & IT Consulting
Company size1001 - 5000

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Job description

πŸ“Œ Position: Data Scientist - Machine Learning (Production & AI)

Location: Remote from LATAM

Contract Type: Full-time contractor (via In All Media)

Time Zone Alignment: US Time Zones (Central Time)

🧭 About In All Media

In All Media is a global technology and design firm focused on building impactful digital solutions through remote, distributed teams across LATAM. We partner with international clients across industries, providing long-term technical expertise, product innovation, and team augmentation.

πŸš€ Project Overview

The project centers on building, scaling, and maintaining end-to-end production machine learning pipelines and infrastructure in a cloud-native setting. The primary goal is to empower data-driven decision-making across the enterprise by delivering robust, scalable ML solutions. In this role, you will bridge model experimentation with production deployment, helping the team advance its core predictive algorithms while expanding into modern AI and LLM-driven capabilities.

πŸ” Key Responsibilities

  • ML Model Development & Deployment: Develop, deploy, and maintain production-grade Machine Learning (ML) models in cloud environments beyond local notebook development.
  • Feature Engineering & EDA: Perform Exploratory Data Analysis (EDA) and design feature engineering pipelines to support production ML workflows.
  • Pipeline Infrastructure: Build, maintain, and optimize data pipelines that feed and sustain ML models in production.
  • Model Monitoring & Maintenance: Monitor model performance, health, and drift post-deployment to ensure continuous reliability in production.
  • Cross-Functional Collaboration: Partner with software engineering, data, and business stakeholders to translate business goals into scalable ML solutions.
  • AI & LLM Integration: Contribute to Artificial Intelligence (AI) and Large Language Model (LLM) based capabilities where applicable.

πŸ’‘ Must-Have Skills

  • Production ML Experience: 2+ years of professional experience building, deploying, monitoring, and maintaining production ML models in real-world environments.
  • Programming & Data Languages: Strong Python programming skills along with advanced SQL capabilities.
  • Enterprise ML Platforms: Experience utilizing AWS SageMaker or equivalent enterprise ML platforms (such as Google Vertex AI or Azure ML) to support production pipelines.
  • Version Control & Autonomy: Proficient with Git for version control and a demonstrated ability to work independently within production settings.

🌟 Nice-to-Have Skills

  • MLOps Ecosystem: Familiarity with MLOps and orchestration tools such as MLflow, Apache Airflow, or dbt (Data Build Tool).
  • Data Warehousing: Hands-on experience working with Snowflake.
  • Domain Expertise: Prior background in marketing, growth, experimentation, or causal inference.
  • Generative AI: Practical experience working with LLMs (Large Language Models) or autonomous AI agents.
  • Methodologies: Experience operating within Agile development environments.

🌐 Time Zone & Collaboration

The role requires alignment with US Time Zones. Candidates must be available during standard US business hours to ensure real-time collaboration with cross-functional engineering, data, and business partners.

πŸ’¬ Language

All interviews, documentation, and daily communication will be conducted exclusively in English.

Note: This contract is managed through In All Media. We provide the platform and infrastructure for LATAM’s top talent to work with global leaders.

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MR

Marcus Rivera

Chief Revenue Officer

m.rivera@company.com
linkedin.com/in/marcusrivera
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