AI ML Engineer

Posted 14 Hours Ago
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Mumbai, Maharashtra, IND
Hybrid
Mid level
Artificial Intelligence • Automotive • Computer Vision • Information Technology • Internet of Things • Logistics • Software
We make a unified map designed for every moving vehicle
The Role
Build reusable geospatial AI components including embeddings, similarity search, retrieval, feature engineering, and agentic pipeline modules. Process imagery, map, sensor, and traffic data; support foundation-model training, evaluation, and fine-tuning; and deliver tested, documented components to MLOps for production serving. The role requires strong Python and software engineering fundamentals, deep learning experience, retrieval-system knowledge, and familiarity with high-volume spatial data.
Summary Generated by Built In
What's the role?

About the RoleAI & Analytics Infrastructure brings together Analytics Engineering, AI Infrastructure, Responsible AI, and domain AI teams (e.g., AI for Mapmaking) to provide reusable building blocks  agents, tools, data access, semantics that run on a shared infrastructure and control layer (agentic frameworks, agentic identity, guardrails). This unlocks fast, scalable, and safe AI adoption, and lets domain teams focus on innovation rather than re-building operational plumbing each time.

This role builds the geospatial-specific building blocks themselves  embeddings, retrieval, and data-access components that power systems . Without this role, that build capacity falls to senior/lead engineers who should be focused on architecture rather than day-to-day implementation and the pace at which new geospatial capabilities reach the shared layer slows down. A Geo AI Engineer II supplies that build capacity now, while developing the geospatial-AI depth this central function will keep needing as more domain teams plug into the shared layer.


What You'll Do

    • Build reusable geospatial AI building blocks  embeddings, similarity search, and retrieval components  that other domain teams consume rather than rebuild.
    • Contribute to production agentic pipelines , implementing and improving detection, validation, and data-handling components that process real map and imagery data.
    • Prepare and engineer geospatial data (imagery, map data, sensor/traffic signals) as AI feature-engineering input  framed as an AI capability, not classic GIS infrastructure.
    • Support training, evaluation, and fine-tuning work for geospatial foundation models under senior engineers' architectural direction.
    • Hand off working components cleanly to MLOps for production serving, with enough documentation and testing that another team can build on them without you in the room.

Who are you?
  • Master's degree (or equivalent experience) in Computer Science, AI, Machine Learning, Geospatial Science, or a related field.
  • 2–4 years of experience in ML/AI engineering, ideally with some hands-on exposure to geospatial or imagery data or strong ML fundamentals with a genuine aptitude and interest in ramping into the spatial domain.
  • Solid Python and software engineering fundamentals: testing, code quality, version control.
  • Collaborative by default comfortable taking direction from senior/lead engineers on architecture while owning your own implementation.

Required

  • Experience with at least one deep learning framework (PyTorch or TensorFlow).
  • Practical experience with embeddings, similarity search, or retrieval-based systems.
  • Working familiarity with foundation-model concepts  self-supervised learning, fine-tuning, transfer learning.
  • Comfortable working with imagery or other high-volume spatial/sensor data.

Preferred

  • Exposure to multi-sensor imagery (optical, infrared, radar/SAR) and common geospatial data formats.
  • Experience with distributed training or large-scale data pipelines.
  • Some exposure to agentic or multi-stage pipeline systems (not necessarily production-scale).

Nice to HaveExposure to LiDAR, drone data processing, TinyML/edge AI, vector databases, or Go/Java/C++ — useful for accelerating impact inside HERE's mapmaking-AI ecosystem, though not required to apply.


HERE is an equal opportunity employer. We evaluate qualified applicants without regard to race, color, age, gender identity, sexual orientation, marital status, parental status, religion, sex, national origin, disability, veteran status, and other legally protected characteristics.

Who are we?

HERE Technologies is a location data and technology platform company. We empower our customers to achieve better outcomes – from helping a city manage its infrastructure or a business optimize its assets to guiding drivers to their destination safely.


At HERE we take it upon ourselves to be the change we wish to see. We create solutions that fuel innovation, provide opportunity and foster inclusion to improve people’s lives. If you are inspired by an open world and driven to create positive change, join us. Learn more about us on our YouTube Channel.

Skills Required

  • Master's degree or equivalent experience in Computer Science, AI, Machine Learning, Geospatial Science, or a related field
  • 2-4 years of experience in ML or AI engineering
  • Strong Python and software engineering fundamentals, including testing, code quality, and version control
  • Experience with at least one deep learning framework, such as PyTorch or TensorFlow
  • Practical experience with embeddings, similarity search, or retrieval-based systems
  • Working familiarity with foundation-model concepts, including self-supervised learning, fine-tuning, and transfer learning
  • Comfort working with imagery or other high-volume spatial or sensor data
  • Collaborative approach and ability to implement under senior or lead engineer direction
  • Exposure to geospatial or imagery data
  • Exposure to multi-sensor imagery, including optical, infrared, radar, or SAR
  • Familiarity with common geospatial data formats
  • Experience with distributed training or large-scale data pipelines
  • Exposure to agentic or multi-stage pipeline systems
  • Exposure to LiDAR or drone data processing
  • Exposure to TinyML or edge AI
  • Exposure to vector databases
  • Experience with Go, Java, or C++

What the Team is Saying

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HERE Technologies Compensation & Benefits Highlights

  • Leave & Time Off Breadth — Time off is a standout, with generous vacation policies, discretionary/unlimited PTO in the U.S., and options like sabbaticals and volunteer time off. Employees also highlight hybrid-friendly practices that make taking time off practical.
  • Healthcare Strength — Health coverage is often characterized as solid, with mentions of decent plans and, in some cases, low premiums. Ancillary benefits such as vision, HSA, life insurance, and AD&D are also cited positively.
  • Flexible Benefits — Work flexibility is consistently emphasized through hybrid schedules and remote options. Formal “Flexi Work Options” and remote-work allowances in some regions reinforce this strength.

HERE Technologies Insights

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The Company
HQ: Amsterdam
6,000 Employees
Year Founded: 1985

What We Do

HERE Technologies is a location data and technology company that created the first digital map over 35 years ago. Today we are the world's leading location platform company with a global footprint across 52 countries. Although our strongest presence is in the automotive industry, we also work with leading companies across a wide range of industries, including transport and logistics, mobility, manufacturing and retail and the public sector.

Why Work With Us

At HERE, we're always excited about discovering people who share our passion for building innovative solutions that make the world easier to navigate. We believe our success is powered by our team's diversity, creativity and collaboration and we're always looking for opportunities to grow it further.

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HERE Technologies Offices

Hybrid Workspace

Employees engage in a combination of remote and on-site work.

Typical time on-site: 2 days a week
HQAmsterdam, NL
JP
Bangkok, TH
Bengaluru, IN
Berlin, DE
Burlington, MA
Chicago, IL
Eindhoven, NL
El Desagüe, MX
Frankfurt am Main, DE
Gurugram, IN
Hanyang, KR
Kraków, PL
London, GB
Melbourne, Victoria
Mumbai, IN
Navi Mumbai, IN
Paris, FR
São Paulo, BR
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