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Weld vs Funnel vs Rivery

You’re comparing Weld vs Funnel vs Rivery. Explore how they differ on connectors, pricing, and features. Ed Logo

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Weld vs Funnel vs Rivery

FeatureWeldFunnelRivery
Core Platform
Price
$79 / 5M Active Rows
$1.08 / flexpoint per month
$0.75 per credit (100MB replicated = 1 credit)
Free tier
No
Yes
No
Location
DK, (EU)
SE
US
Connectors & Sync
Connectors
200+
500+
200+
Extract data (ETL)
Yes
Yes
Yes
Sync to HubSpot, Salesforce, Klaviyo, Excel (reverse ETL)
Yes
No
Yes
Two-Way Sync
Yes
No
No
Transformations & AI
Transformations
Yes
Yes
Yes
AI Assistant
Yes
Yes
No
dbt Core Integration
Yes
No
No
dbt Cloud Integration
Yes
No
No
Governance & DevOps
Orchestration
Yes
No
Yes
Lineage
Yes
No
No
Version control
Yes
No
No
On-Premise
No
No
No
OpenAPI / Developer API
Yes
No
Yes
Integrations
Load to/from Excel
Yes
Yes
No
Load to/from Google Sheets
Yes
No
Yes
Ratings
G2 rating
4.8
4.5
4.7

Overview

Weld in Short

Weld is a unified ELT and data activation platform that combines ingestion, modeling, transformations, orchestration, lineage, and reverse ETL in a single SaaS interface. With premium in-house–built connectors, an intuitive UI, and near real-time syncs, Weld enables both technical and non-technical users to create and manage data workflows efficiently. Weld also includes an AI assistant to support SQL modeling, generate transformations, and streamline repetitive tasks. Teams can ingest data from a wide range of sources—including marketing platforms, CRMs, databases, Google Sheets, Excel, and APIs—into their cloud data warehouse and activate it back into business tools.

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Pros

  • Lineage, orchestration, and workflow features included by default

  • Handles large datasets and near real-time data sync

  • ELT and reverse ETL in one platform

  • User-friendly interface with minimal setup required

  • Flat, predictable monthly pricing model

  • 200+ in-house–built, high-quality connectors

  • AI assistant for modeling and transformations

Cons

  • Some SQL knowledge is useful for advanced modeling

  • Optimized for cloud-warehouse workflows (Snowflake, BigQuery, Redshift, etc.)

  • Feature set is streamlined for modern ELT/activation use cases

Reviews & Quotes

A reviewer on G2 said:

What I like about Weld

Weld’s graphical interface is intuitive and easy to work with, even for teams with limited SQL experience. Its flexibility across sources—from databases to Google Sheets and APIs—made onboarding smooth, and performance across larger workloads was consistently strong. Support was responsive and helpful throughout our setup and ongoing use.

Overview

Funnel in Short

Funnel is a cloud-based marketing data hub designed to centralize, organize, and standardize marketing and advertising data. It allows teams to collect data from hundreds of marketing platforms and deliver it to destinations like BigQuery, Snowflake, Looker Studio, dashboards, and spreadsheets. Funnel is built for non-technical users and focuses specifically on marketing analytics use cases.

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Pros

  • User-friendly interface for marketing teams

  • Requires minimal technical expertise

  • Large library of marketing connectors

  • Strong onboarding and customer training

  • Good for centralizing marketing data in one place

Cons

  • Pricing can be expensive and difficult to predict

  • Limited to marketing-specific use cases

  • Reporting and analytics capabilities are basic

  • Less suitable for cross-departmental data needs

  • Can have a steeper learning curve for more complex setups

Reviews & Quotes

A reviewer on G2:

What I like about Funnel

We use Funnel mostly for ingesting data into BigQuery. Using the native connectors is significantly more efficient than building a direct connection to the relevant APIs, particularly for Facebook / Meta data.

What I dislike about Funnel

Recently the price of the platform has gone up. Although it is still priced competitively vs its alternatives.

Overview

Rivery in Short

Rivery is a cloud-based ELT and data orchestration platform designed to help teams build data pipelines with minimal engineering effort. It provides pre-built connectors, support for custom API extraction, and post-load transformations through "Logic Rivers," which allow SQL- and Python-based transformation workflows. While Rivery focuses on automation and usability, the platform relies on a credit-based pricing model and lacks some advanced observability features found in more enterprise-focused tools.

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Pros

  • User-friendly, no-code/low-code interface

  • Supports custom API integrations through a native GUI

  • Reverse ETL capabilities

  • Python and SQL-based transformations via Logic Rivers

  • Responsive customer support

Cons

  • Pricing can be difficult to predict due to credit-based model

  • Limited real-time / on-the-fly transformation options (no ETL)

  • Documentation quality is inconsistent

  • Interface can become cumbersome for large, complex pipelines

  • Error handling and monitoring features are less advanced compared to enterprise tools

Reviews & Quotes

As a user on G2 puts it::

What I like about Rivery

As a data analyst, I find the tool really easy to use; it's intuitive how you connect to the different data sources and create your data pipelines.

What I dislike about Rivery

For first-time users, it would be good to have some demo buttons; still, if you are familiar with terms, you'll manage to navigate between windows.

Feature-by-Feature Comparison

Feature
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Ease of Use & Interface

Side-by-side

weld logo

Weld’s interface is built for clarity and speed, enabling users with varying levels of technical experience to manage data pipelines and models efficiently. Its built-in lineage and orchestration tools provide transparency across workflows.

funnel logo

Funnel provides a clean, intuitive interface designed for marketing teams, making setup straightforward for non-technical users. More complex setups, however, may require additional learning.

rivery logo

Rivery is generally easy to use and designed for fast pipeline building, though working with larger workflows can feel cluttered.

Pricing & Affordability

Side-by-side

weld logo

Weld offers a simple and predictable pricing model starting at $79 for 5 million active rows. This flat, usage-transparent structure makes budgeting straightforward for small and medium-sized teams.

funnel logo

The flexpoints pricing model can be difficult to predict and becomes expensive as data volumes increase, which may pose challenges for smaller businesses.

rivery logo

Rivery uses a credit-based pricing model that can become expensive as data volumes grow, and costs may be difficult to estimate in advance.

Feature Set

Side-by-side

weld logo

Weld provides ELT ingestion, SQL-based transformations, reverse ETL activation, data lineage, orchestration, and workflow management in a single platform. Its AI assistant accelerates modeling and transformation tasks.

funnel logo

Funnel offers over 500 connectors and simple transformation tools, along with strong onboarding support. However, its reporting, modeling, and analytics capabilities remain basic compared to broader data platforms.

rivery logo

Rivery offers ELT, Reverse ETL, custom API extraction, and SQL/Python transformations. However, observability, lineage, and advanced governance features are limited.

Flexibility & Customization

Side-by-side

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Users can model data using SQL enhanced by Weld’s AI assistant, automate workflows, and build custom connectors to any API. This provides strong flexibility for teams that want to tailor integrations and transformations within one platform.

funnel logo

Funnel works well for marketing workflows but lacks the flexibility needed for wider data engineering use cases, cross-team pipelines, or advanced customization.

rivery logo

The platform offers flexibility through its Logic Rivers and custom API connectors, but lacks deeper customization options and advanced development workflows found in more engineering-focused tools.

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CUSTOMER STORIES

The latest success stories from data-driven companies

Jacob Poulsen, Head of Marketing Expansion at Flatpay logo

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How Dishoom scaled data operations without scaling its team

We’re still a team of three, but we’re often doing far more than the equivalent of three full-time employees. That’s down to how we're able to leverage systems, data, and processes.
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Sven Hasenberg, CFO, VitaMoment logo

Inside VitaMoment’s Journey to KPI-Driven Growth and Data Ownership

We’ve always been a KPI-driven company. But we wanted to scale that mindset across every team member, every team, every decision.
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Temur Makhsudov, Head of BI and Operations logo

How Danish Endurance boosted profitability by 77 % and transformed data management with Weld

Before Weld, our data infrastructure was limited and we relied heavily on Excel files and custom Python scripts.
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Matias Voldby Drejer, BI Lead logo

How Female Invest centralized data management and saved resources with Weld

Weld has saved us a ton of time, from not having data ready to having a fully functional data warehouse and connectors.
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Jonas Iversen, Tech Lead Data logo

How Soundboks streamlined data integration with Weld, S3, and Databricks

By integrating Weld, Amazon S3, and Databricks, Soundboks built a modern data pipeline that automates data ingestion, improves reporting, and provides up-to-date visibility into sales performance
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Jens Karstoft, Chief Operating Officer at Roccamore logo

How Roccamore unlocked better business insights with Weld

We didn’t have a good data setup, so we lacked the business insights we needed. Weld has allowed us to set up a structured data infrastructure and access insights quickly.
Jens Karstoft, Chief Operating Officer at Roccamore

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